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drhbbd42a62004-05-22 17:41:58 +00001/*
2** 2004 May 22
3**
4** The author disclaims copyright to this source code. In place of
5** a legal notice, here is a blessing:
6**
7** May you do good and not evil.
8** May you find forgiveness for yourself and forgive others.
9** May you share freely, never taking more than you give.
10**
11******************************************************************************
12**
drh734c9862008-11-28 15:37:20 +000013** This file contains the VFS implementation for unix-like operating systems
14** include Linux, MacOSX, *BSD, QNX, VxWorks, AIX, HPUX, and others.
danielk1977822a5162008-05-16 04:51:54 +000015**
drh734c9862008-11-28 15:37:20 +000016** There are actually several different VFS implementations in this file.
17** The differences are in the way that file locking is done. The default
18** implementation uses Posix Advisory Locks. Alternative implementations
19** use flock(), dot-files, various proprietary locking schemas, or simply
20** skip locking all together.
21**
drh9b35ea62008-11-29 02:20:26 +000022** This source file is organized into divisions where the logic for various
drh734c9862008-11-28 15:37:20 +000023** subfunctions is contained within the appropriate division. PLEASE
24** KEEP THE STRUCTURE OF THIS FILE INTACT. New code should be placed
25** in the correct division and should be clearly labeled.
26**
drh6b9d6dd2008-12-03 19:34:47 +000027** The layout of divisions is as follows:
drh734c9862008-11-28 15:37:20 +000028**
29** * General-purpose declarations and utility functions.
30** * Unique file ID logic used by VxWorks.
drh715ff302008-12-03 22:32:44 +000031** * Various locking primitive implementations (all except proxy locking):
drh734c9862008-11-28 15:37:20 +000032** + for Posix Advisory Locks
33** + for no-op locks
34** + for dot-file locks
35** + for flock() locking
36** + for named semaphore locks (VxWorks only)
37** + for AFP filesystem locks (MacOSX only)
drh9b35ea62008-11-29 02:20:26 +000038** * sqlite3_file methods not associated with locking.
39** * Definitions of sqlite3_io_methods objects for all locking
40** methods plus "finder" functions for each locking method.
drh6b9d6dd2008-12-03 19:34:47 +000041** * sqlite3_vfs method implementations.
drh715ff302008-12-03 22:32:44 +000042** * Locking primitives for the proxy uber-locking-method. (MacOSX only)
drh9b35ea62008-11-29 02:20:26 +000043** * Definitions of sqlite3_vfs objects for all locking methods
44** plus implementations of sqlite3_os_init() and sqlite3_os_end().
drhbbd42a62004-05-22 17:41:58 +000045*/
drhbbd42a62004-05-22 17:41:58 +000046#include "sqliteInt.h"
danielk197729bafea2008-06-26 10:41:19 +000047#if SQLITE_OS_UNIX /* This file is used on unix only */
drh66560ad2006-01-06 14:32:19 +000048
danielk1977e339d652008-06-28 11:23:00 +000049/*
drh6b9d6dd2008-12-03 19:34:47 +000050** There are various methods for file locking used for concurrency
51** control:
danielk1977e339d652008-06-28 11:23:00 +000052**
drh734c9862008-11-28 15:37:20 +000053** 1. POSIX locking (the default),
54** 2. No locking,
55** 3. Dot-file locking,
56** 4. flock() locking,
57** 5. AFP locking (OSX only),
58** 6. Named POSIX semaphores (VXWorks only),
59** 7. proxy locking. (OSX only)
60**
61** Styles 4, 5, and 7 are only available of SQLITE_ENABLE_LOCKING_STYLE
62** is defined to 1. The SQLITE_ENABLE_LOCKING_STYLE also enables automatic
63** selection of the appropriate locking style based on the filesystem
64** where the database is located.
danielk1977e339d652008-06-28 11:23:00 +000065*/
drh40bbb0a2008-09-23 10:23:26 +000066#if !defined(SQLITE_ENABLE_LOCKING_STYLE)
drhd2cb50b2009-01-09 21:41:17 +000067# if defined(__APPLE__)
drh40bbb0a2008-09-23 10:23:26 +000068# define SQLITE_ENABLE_LOCKING_STYLE 1
69# else
70# define SQLITE_ENABLE_LOCKING_STYLE 0
71# endif
72#endif
drhbfe66312006-10-03 17:40:40 +000073
drhe32a2562016-03-04 02:38:00 +000074/* Use pread() and pwrite() if they are available */
drh79a2ca32016-03-04 03:14:39 +000075#if defined(__APPLE__)
76# define HAVE_PREAD 1
77# define HAVE_PWRITE 1
78#endif
drhe32a2562016-03-04 02:38:00 +000079#if defined(HAVE_PREAD64) && defined(HAVE_PWRITE64)
80# undef USE_PREAD
drhe32a2562016-03-04 02:38:00 +000081# define USE_PREAD64 1
drhe32a2562016-03-04 02:38:00 +000082#elif defined(HAVE_PREAD) && defined(HAVE_PWRITE)
drh79a2ca32016-03-04 03:14:39 +000083# undef USE_PREAD64
84# define USE_PREAD 1
drhe32a2562016-03-04 02:38:00 +000085#endif
86
drh9cbe6352005-11-29 03:13:21 +000087/*
drh9cbe6352005-11-29 03:13:21 +000088** standard include files.
89*/
90#include <sys/types.h>
91#include <sys/stat.h>
92#include <fcntl.h>
93#include <unistd.h>
drhbbd42a62004-05-22 17:41:58 +000094#include <time.h>
drh19e2d372005-08-29 23:00:03 +000095#include <sys/time.h>
drhbbd42a62004-05-22 17:41:58 +000096#include <errno.h>
dan32c12fe2013-05-02 17:37:31 +000097#if !defined(SQLITE_OMIT_WAL) || SQLITE_MAX_MMAP_SIZE>0
drh91be7dc2014-08-11 13:53:30 +000098# include <sys/mman.h>
drhb469f462010-12-22 21:48:50 +000099#endif
drh1da88f02011-12-17 16:09:16 +0000100
drhe89b2912015-03-03 20:42:01 +0000101#if SQLITE_ENABLE_LOCKING_STYLE
danielk1977c70dfc42008-11-19 13:52:30 +0000102# include <sys/ioctl.h>
drhe89b2912015-03-03 20:42:01 +0000103# include <sys/file.h>
104# include <sys/param.h>
drhbfe66312006-10-03 17:40:40 +0000105#endif /* SQLITE_ENABLE_LOCKING_STYLE */
drh9cbe6352005-11-29 03:13:21 +0000106
drh6bca6512015-04-13 23:05:28 +0000107#if defined(__APPLE__) && ((__MAC_OS_X_VERSION_MIN_REQUIRED > 1050) || \
108 (__IPHONE_OS_VERSION_MIN_REQUIRED > 2000))
109# if (!defined(TARGET_OS_EMBEDDED) || (TARGET_OS_EMBEDDED==0)) \
110 && (!defined(TARGET_IPHONE_SIMULATOR) || (TARGET_IPHONE_SIMULATOR==0))
111# define HAVE_GETHOSTUUID 1
112# else
113# warning "gethostuuid() is disabled."
114# endif
115#endif
116
117
drhe89b2912015-03-03 20:42:01 +0000118#if OS_VXWORKS
119# include <sys/ioctl.h>
120# include <semaphore.h>
121# include <limits.h>
122#endif /* OS_VXWORKS */
123
124#if defined(__APPLE__) || SQLITE_ENABLE_LOCKING_STYLE
drh84a2bf62010-03-05 13:41:06 +0000125# include <sys/mount.h>
126#endif
127
drhdbe4b882011-06-20 18:00:17 +0000128#ifdef HAVE_UTIME
129# include <utime.h>
130#endif
131
drh9cbe6352005-11-29 03:13:21 +0000132/*
drh7ed97b92010-01-20 13:07:21 +0000133** Allowed values of unixFile.fsFlags
134*/
135#define SQLITE_FSFLAGS_IS_MSDOS 0x1
136
137/*
drhf1a221e2006-01-15 17:27:17 +0000138** If we are to be thread-safe, include the pthreads header and define
139** the SQLITE_UNIX_THREADS macro.
drh9cbe6352005-11-29 03:13:21 +0000140*/
drhd677b3d2007-08-20 22:48:41 +0000141#if SQLITE_THREADSAFE
drh9cbe6352005-11-29 03:13:21 +0000142# include <pthread.h>
143# define SQLITE_UNIX_THREADS 1
144#endif
145
146/*
147** Default permissions when creating a new file
148*/
149#ifndef SQLITE_DEFAULT_FILE_PERMISSIONS
150# define SQLITE_DEFAULT_FILE_PERMISSIONS 0644
151#endif
152
danielk1977b4b47412007-08-17 15:53:36 +0000153/*
drh5adc60b2012-04-14 13:25:11 +0000154** Default permissions when creating auto proxy dir
155*/
aswiftaebf4132008-11-21 00:10:35 +0000156#ifndef SQLITE_DEFAULT_PROXYDIR_PERMISSIONS
157# define SQLITE_DEFAULT_PROXYDIR_PERMISSIONS 0755
158#endif
159
160/*
danielk1977b4b47412007-08-17 15:53:36 +0000161** Maximum supported path-length.
162*/
163#define MAX_PATHNAME 512
drh9cbe6352005-11-29 03:13:21 +0000164
dane88ec182016-01-25 17:04:48 +0000165/*
166** Maximum supported symbolic links
167*/
168#define SQLITE_MAX_SYMLINKS 100
169
drh91eb93c2015-03-03 19:56:20 +0000170/* Always cast the getpid() return type for compatibility with
171** kernel modules in VxWorks. */
172#define osGetpid(X) (pid_t)getpid()
173
drh734c9862008-11-28 15:37:20 +0000174/*
drh734c9862008-11-28 15:37:20 +0000175** Only set the lastErrno if the error code is a real error and not
176** a normal expected return code of SQLITE_BUSY or SQLITE_OK
177*/
178#define IS_LOCK_ERROR(x) ((x != SQLITE_OK) && (x != SQLITE_BUSY))
179
drhd91c68f2010-05-14 14:52:25 +0000180/* Forward references */
181typedef struct unixShm unixShm; /* Connection shared memory */
182typedef struct unixShmNode unixShmNode; /* Shared memory instance */
183typedef struct unixInodeInfo unixInodeInfo; /* An i-node */
184typedef struct UnixUnusedFd UnixUnusedFd; /* An unused file descriptor */
drh9cbe6352005-11-29 03:13:21 +0000185
186/*
dane946c392009-08-22 11:39:46 +0000187** Sometimes, after a file handle is closed by SQLite, the file descriptor
188** cannot be closed immediately. In these cases, instances of the following
189** structure are used to store the file descriptor while waiting for an
190** opportunity to either close or reuse it.
191*/
dane946c392009-08-22 11:39:46 +0000192struct UnixUnusedFd {
193 int fd; /* File descriptor to close */
194 int flags; /* Flags this file descriptor was opened with */
195 UnixUnusedFd *pNext; /* Next unused file descriptor on same file */
196};
197
198/*
drh9b35ea62008-11-29 02:20:26 +0000199** The unixFile structure is subclass of sqlite3_file specific to the unix
200** VFS implementations.
drh9cbe6352005-11-29 03:13:21 +0000201*/
drh054889e2005-11-30 03:20:31 +0000202typedef struct unixFile unixFile;
203struct unixFile {
danielk197762079062007-08-15 17:08:46 +0000204 sqlite3_io_methods const *pMethod; /* Always the first entry */
drhde60fc22011-12-14 17:53:36 +0000205 sqlite3_vfs *pVfs; /* The VFS that created this unixFile */
drhd91c68f2010-05-14 14:52:25 +0000206 unixInodeInfo *pInode; /* Info about locks on this inode */
drh8af6c222010-05-14 12:43:01 +0000207 int h; /* The file descriptor */
drh8af6c222010-05-14 12:43:01 +0000208 unsigned char eFileLock; /* The type of lock held on this fd */
drh3ee34842012-02-11 21:21:17 +0000209 unsigned short int ctrlFlags; /* Behavioral bits. UNIXFILE_* flags */
drh8af6c222010-05-14 12:43:01 +0000210 int lastErrno; /* The unix errno from last I/O error */
211 void *lockingContext; /* Locking style specific state */
212 UnixUnusedFd *pUnused; /* Pre-allocated UnixUnusedFd */
drh8af6c222010-05-14 12:43:01 +0000213 const char *zPath; /* Name of the file */
214 unixShm *pShm; /* Shared memory segment information */
dan6e09d692010-07-27 18:34:15 +0000215 int szChunk; /* Configured by FCNTL_CHUNK_SIZE */
mistachkine98844f2013-08-24 00:59:24 +0000216#if SQLITE_MAX_MMAP_SIZE>0
drh0d0614b2013-03-25 23:09:28 +0000217 int nFetchOut; /* Number of outstanding xFetch refs */
218 sqlite3_int64 mmapSize; /* Usable size of mapping at pMapRegion */
drh9b4c59f2013-04-15 17:03:42 +0000219 sqlite3_int64 mmapSizeActual; /* Actual size of mapping at pMapRegion */
220 sqlite3_int64 mmapSizeMax; /* Configured FCNTL_MMAP_SIZE value */
drh0d0614b2013-03-25 23:09:28 +0000221 void *pMapRegion; /* Memory mapped region */
mistachkine98844f2013-08-24 00:59:24 +0000222#endif
drh537dddf2012-10-26 13:46:24 +0000223#ifdef __QNXNTO__
224 int sectorSize; /* Device sector size */
225 int deviceCharacteristics; /* Precomputed device characteristics */
226#endif
drh08c6d442009-02-09 17:34:07 +0000227#if SQLITE_ENABLE_LOCKING_STYLE
drh8af6c222010-05-14 12:43:01 +0000228 int openFlags; /* The flags specified at open() */
drh08c6d442009-02-09 17:34:07 +0000229#endif
drh7ed97b92010-01-20 13:07:21 +0000230#if SQLITE_ENABLE_LOCKING_STYLE || defined(__APPLE__)
drh8af6c222010-05-14 12:43:01 +0000231 unsigned fsFlags; /* cached details from statfs() */
drh6c7d5c52008-11-21 20:32:33 +0000232#endif
233#if OS_VXWORKS
drh8af6c222010-05-14 12:43:01 +0000234 struct vxworksFileId *pId; /* Unique file ID */
drh6c7d5c52008-11-21 20:32:33 +0000235#endif
drhd3d8c042012-05-29 17:02:40 +0000236#ifdef SQLITE_DEBUG
drh8f941bc2009-01-14 23:03:40 +0000237 /* The next group of variables are used to track whether or not the
238 ** transaction counter in bytes 24-27 of database files are updated
239 ** whenever any part of the database changes. An assertion fault will
240 ** occur if a file is updated without also updating the transaction
241 ** counter. This test is made to avoid new problems similar to the
242 ** one described by ticket #3584.
243 */
244 unsigned char transCntrChng; /* True if the transaction counter changed */
245 unsigned char dbUpdate; /* True if any part of database file changed */
246 unsigned char inNormalWrite; /* True if in a normal write operation */
danf23da962013-03-23 21:00:41 +0000247
drh8f941bc2009-01-14 23:03:40 +0000248#endif
danf23da962013-03-23 21:00:41 +0000249
danielk1977967a4a12007-08-20 14:23:44 +0000250#ifdef SQLITE_TEST
251 /* In test mode, increase the size of this structure a bit so that
252 ** it is larger than the struct CrashFile defined in test6.c.
253 */
254 char aPadding[32];
255#endif
drh9cbe6352005-11-29 03:13:21 +0000256};
257
drhb00d8622014-01-01 15:18:36 +0000258/* This variable holds the process id (pid) from when the xRandomness()
259** method was called. If xOpen() is called from a different process id,
260** indicating that a fork() has occurred, the PRNG will be reset.
261*/
drh8cd5b252015-03-02 22:06:43 +0000262static pid_t randomnessPid = 0;
drhb00d8622014-01-01 15:18:36 +0000263
drh0ccebe72005-06-07 22:22:50 +0000264/*
drha7e61d82011-03-12 17:02:57 +0000265** Allowed values for the unixFile.ctrlFlags bitmask:
266*/
drhf0b190d2011-07-26 16:03:07 +0000267#define UNIXFILE_EXCL 0x01 /* Connections from one process only */
268#define UNIXFILE_RDONLY 0x02 /* Connection is read only */
269#define UNIXFILE_PERSIST_WAL 0x04 /* Persistent WAL mode */
danee140c42011-08-25 13:46:32 +0000270#ifndef SQLITE_DISABLE_DIRSYNC
271# define UNIXFILE_DIRSYNC 0x08 /* Directory sync needed */
272#else
273# define UNIXFILE_DIRSYNC 0x00
274#endif
drhcb15f352011-12-23 01:04:17 +0000275#define UNIXFILE_PSOW 0x10 /* SQLITE_IOCAP_POWERSAFE_OVERWRITE */
drhc02a43a2012-01-10 23:18:38 +0000276#define UNIXFILE_DELETE 0x20 /* Delete on close */
277#define UNIXFILE_URI 0x40 /* Filename might have query parameters */
278#define UNIXFILE_NOLOCK 0x80 /* Do no file locking */
drha7e61d82011-03-12 17:02:57 +0000279
280/*
drh198bf392006-01-06 21:52:49 +0000281** Include code that is common to all os_*.c files
282*/
283#include "os_common.h"
284
285/*
drh0ccebe72005-06-07 22:22:50 +0000286** Define various macros that are missing from some systems.
287*/
drhbbd42a62004-05-22 17:41:58 +0000288#ifndef O_LARGEFILE
289# define O_LARGEFILE 0
290#endif
291#ifdef SQLITE_DISABLE_LFS
292# undef O_LARGEFILE
293# define O_LARGEFILE 0
294#endif
295#ifndef O_NOFOLLOW
296# define O_NOFOLLOW 0
297#endif
298#ifndef O_BINARY
299# define O_BINARY 0
300#endif
301
302/*
drh2b4b5962005-06-15 17:47:55 +0000303** The threadid macro resolves to the thread-id or to 0. Used for
304** testing and debugging only.
305*/
drhd677b3d2007-08-20 22:48:41 +0000306#if SQLITE_THREADSAFE
drh2b4b5962005-06-15 17:47:55 +0000307#define threadid pthread_self()
308#else
309#define threadid 0
310#endif
311
drh99ab3b12011-03-02 15:09:07 +0000312/*
dane6ecd662013-04-01 17:56:59 +0000313** HAVE_MREMAP defaults to true on Linux and false everywhere else.
314*/
315#if !defined(HAVE_MREMAP)
316# if defined(__linux__) && defined(_GNU_SOURCE)
317# define HAVE_MREMAP 1
318# else
319# define HAVE_MREMAP 0
320# endif
321#endif
322
323/*
dan2ee53412014-09-06 16:49:40 +0000324** Explicitly call the 64-bit version of lseek() on Android. Otherwise, lseek()
325** is the 32-bit version, even if _FILE_OFFSET_BITS=64 is defined.
326*/
327#ifdef __ANDROID__
328# define lseek lseek64
329#endif
330
331/*
drh9a3baf12011-04-25 18:01:27 +0000332** Different Unix systems declare open() in different ways. Same use
333** open(const char*,int,mode_t). Others use open(const char*,int,...).
334** The difference is important when using a pointer to the function.
335**
336** The safest way to deal with the problem is to always use this wrapper
337** which always has the same well-defined interface.
338*/
339static int posixOpen(const char *zFile, int flags, int mode){
340 return open(zFile, flags, mode);
341}
342
drh90315a22011-08-10 01:52:12 +0000343/* Forward reference */
344static int openDirectory(const char*, int*);
danbc760632014-03-20 09:42:09 +0000345static int unixGetpagesize(void);
drh90315a22011-08-10 01:52:12 +0000346
drh9a3baf12011-04-25 18:01:27 +0000347/*
drh99ab3b12011-03-02 15:09:07 +0000348** Many system calls are accessed through pointer-to-functions so that
349** they may be overridden at runtime to facilitate fault injection during
350** testing and sandboxing. The following array holds the names and pointers
351** to all overrideable system calls.
352*/
353static struct unix_syscall {
mistachkin48864df2013-03-21 21:20:32 +0000354 const char *zName; /* Name of the system call */
drh58ad5802011-03-23 22:02:23 +0000355 sqlite3_syscall_ptr pCurrent; /* Current value of the system call */
356 sqlite3_syscall_ptr pDefault; /* Default value */
drh99ab3b12011-03-02 15:09:07 +0000357} aSyscall[] = {
drh9a3baf12011-04-25 18:01:27 +0000358 { "open", (sqlite3_syscall_ptr)posixOpen, 0 },
359#define osOpen ((int(*)(const char*,int,int))aSyscall[0].pCurrent)
drh99ab3b12011-03-02 15:09:07 +0000360
drh58ad5802011-03-23 22:02:23 +0000361 { "close", (sqlite3_syscall_ptr)close, 0 },
drh99ab3b12011-03-02 15:09:07 +0000362#define osClose ((int(*)(int))aSyscall[1].pCurrent)
363
drh58ad5802011-03-23 22:02:23 +0000364 { "access", (sqlite3_syscall_ptr)access, 0 },
drh99ab3b12011-03-02 15:09:07 +0000365#define osAccess ((int(*)(const char*,int))aSyscall[2].pCurrent)
366
drh58ad5802011-03-23 22:02:23 +0000367 { "getcwd", (sqlite3_syscall_ptr)getcwd, 0 },
drh99ab3b12011-03-02 15:09:07 +0000368#define osGetcwd ((char*(*)(char*,size_t))aSyscall[3].pCurrent)
369
drh58ad5802011-03-23 22:02:23 +0000370 { "stat", (sqlite3_syscall_ptr)stat, 0 },
drh99ab3b12011-03-02 15:09:07 +0000371#define osStat ((int(*)(const char*,struct stat*))aSyscall[4].pCurrent)
372
373/*
374** The DJGPP compiler environment looks mostly like Unix, but it
375** lacks the fcntl() system call. So redefine fcntl() to be something
376** that always succeeds. This means that locking does not occur under
377** DJGPP. But it is DOS - what did you expect?
378*/
379#ifdef __DJGPP__
380 { "fstat", 0, 0 },
381#define osFstat(a,b,c) 0
382#else
drh58ad5802011-03-23 22:02:23 +0000383 { "fstat", (sqlite3_syscall_ptr)fstat, 0 },
drh99ab3b12011-03-02 15:09:07 +0000384#define osFstat ((int(*)(int,struct stat*))aSyscall[5].pCurrent)
385#endif
386
drh58ad5802011-03-23 22:02:23 +0000387 { "ftruncate", (sqlite3_syscall_ptr)ftruncate, 0 },
drh99ab3b12011-03-02 15:09:07 +0000388#define osFtruncate ((int(*)(int,off_t))aSyscall[6].pCurrent)
389
drh58ad5802011-03-23 22:02:23 +0000390 { "fcntl", (sqlite3_syscall_ptr)fcntl, 0 },
drh99ab3b12011-03-02 15:09:07 +0000391#define osFcntl ((int(*)(int,int,...))aSyscall[7].pCurrent)
drhe562be52011-03-02 18:01:10 +0000392
drh58ad5802011-03-23 22:02:23 +0000393 { "read", (sqlite3_syscall_ptr)read, 0 },
drhe562be52011-03-02 18:01:10 +0000394#define osRead ((ssize_t(*)(int,void*,size_t))aSyscall[8].pCurrent)
395
drhe89b2912015-03-03 20:42:01 +0000396#if defined(USE_PREAD) || SQLITE_ENABLE_LOCKING_STYLE
drh58ad5802011-03-23 22:02:23 +0000397 { "pread", (sqlite3_syscall_ptr)pread, 0 },
drhe562be52011-03-02 18:01:10 +0000398#else
drh58ad5802011-03-23 22:02:23 +0000399 { "pread", (sqlite3_syscall_ptr)0, 0 },
drhe562be52011-03-02 18:01:10 +0000400#endif
401#define osPread ((ssize_t(*)(int,void*,size_t,off_t))aSyscall[9].pCurrent)
402
403#if defined(USE_PREAD64)
drh58ad5802011-03-23 22:02:23 +0000404 { "pread64", (sqlite3_syscall_ptr)pread64, 0 },
drhe562be52011-03-02 18:01:10 +0000405#else
drh58ad5802011-03-23 22:02:23 +0000406 { "pread64", (sqlite3_syscall_ptr)0, 0 },
drhe562be52011-03-02 18:01:10 +0000407#endif
drhf9986d92016-04-18 13:09:55 +0000408#define osPread64 ((ssize_t(*)(int,void*,size_t,off64_t))aSyscall[10].pCurrent)
drhe562be52011-03-02 18:01:10 +0000409
drh58ad5802011-03-23 22:02:23 +0000410 { "write", (sqlite3_syscall_ptr)write, 0 },
drhe562be52011-03-02 18:01:10 +0000411#define osWrite ((ssize_t(*)(int,const void*,size_t))aSyscall[11].pCurrent)
412
drhe89b2912015-03-03 20:42:01 +0000413#if defined(USE_PREAD) || SQLITE_ENABLE_LOCKING_STYLE
drh58ad5802011-03-23 22:02:23 +0000414 { "pwrite", (sqlite3_syscall_ptr)pwrite, 0 },
drhe562be52011-03-02 18:01:10 +0000415#else
drh58ad5802011-03-23 22:02:23 +0000416 { "pwrite", (sqlite3_syscall_ptr)0, 0 },
drhe562be52011-03-02 18:01:10 +0000417#endif
418#define osPwrite ((ssize_t(*)(int,const void*,size_t,off_t))\
419 aSyscall[12].pCurrent)
420
421#if defined(USE_PREAD64)
drh58ad5802011-03-23 22:02:23 +0000422 { "pwrite64", (sqlite3_syscall_ptr)pwrite64, 0 },
drhe562be52011-03-02 18:01:10 +0000423#else
drh58ad5802011-03-23 22:02:23 +0000424 { "pwrite64", (sqlite3_syscall_ptr)0, 0 },
drhe562be52011-03-02 18:01:10 +0000425#endif
drhf9986d92016-04-18 13:09:55 +0000426#define osPwrite64 ((ssize_t(*)(int,const void*,size_t,off64_t))\
drhe562be52011-03-02 18:01:10 +0000427 aSyscall[13].pCurrent)
428
drh6226ca22015-11-24 15:06:28 +0000429 { "fchmod", (sqlite3_syscall_ptr)fchmod, 0 },
drh2aa5a002011-04-13 13:42:25 +0000430#define osFchmod ((int(*)(int,mode_t))aSyscall[14].pCurrent)
drhe562be52011-03-02 18:01:10 +0000431
432#if defined(HAVE_POSIX_FALLOCATE) && HAVE_POSIX_FALLOCATE
drh58ad5802011-03-23 22:02:23 +0000433 { "fallocate", (sqlite3_syscall_ptr)posix_fallocate, 0 },
drhe562be52011-03-02 18:01:10 +0000434#else
drh58ad5802011-03-23 22:02:23 +0000435 { "fallocate", (sqlite3_syscall_ptr)0, 0 },
drhe562be52011-03-02 18:01:10 +0000436#endif
dan0fd7d862011-03-29 10:04:23 +0000437#define osFallocate ((int(*)(int,off_t,off_t))aSyscall[15].pCurrent)
drhe562be52011-03-02 18:01:10 +0000438
drh036ac7f2011-08-08 23:18:05 +0000439 { "unlink", (sqlite3_syscall_ptr)unlink, 0 },
440#define osUnlink ((int(*)(const char*))aSyscall[16].pCurrent)
441
drh90315a22011-08-10 01:52:12 +0000442 { "openDirectory", (sqlite3_syscall_ptr)openDirectory, 0 },
443#define osOpenDirectory ((int(*)(const char*,int*))aSyscall[17].pCurrent)
444
drh9ef6bc42011-11-04 02:24:02 +0000445 { "mkdir", (sqlite3_syscall_ptr)mkdir, 0 },
446#define osMkdir ((int(*)(const char*,mode_t))aSyscall[18].pCurrent)
447
448 { "rmdir", (sqlite3_syscall_ptr)rmdir, 0 },
449#define osRmdir ((int(*)(const char*))aSyscall[19].pCurrent)
450
drhe2258a22016-01-12 00:37:55 +0000451#if defined(HAVE_FCHOWN)
drh6226ca22015-11-24 15:06:28 +0000452 { "fchown", (sqlite3_syscall_ptr)fchown, 0 },
drhe2258a22016-01-12 00:37:55 +0000453#else
454 { "fchown", (sqlite3_syscall_ptr)0, 0 },
455#endif
dand3eaebd2012-02-13 08:50:23 +0000456#define osFchown ((int(*)(int,uid_t,gid_t))aSyscall[20].pCurrent)
drh23c4b972012-02-11 23:55:15 +0000457
drh6226ca22015-11-24 15:06:28 +0000458 { "geteuid", (sqlite3_syscall_ptr)geteuid, 0 },
459#define osGeteuid ((uid_t(*)(void))aSyscall[21].pCurrent)
460
dan4dd51442013-08-26 14:30:25 +0000461#if !defined(SQLITE_OMIT_WAL) || SQLITE_MAX_MMAP_SIZE>0
drhe4a08f92016-01-08 19:17:30 +0000462 { "mmap", (sqlite3_syscall_ptr)mmap, 0 },
463#else
464 { "mmap", (sqlite3_syscall_ptr)0, 0 },
465#endif
drh6226ca22015-11-24 15:06:28 +0000466#define osMmap ((void*(*)(void*,size_t,int,int,int,off_t))aSyscall[22].pCurrent)
dan893c0ff2013-03-25 19:05:07 +0000467
drhe4a08f92016-01-08 19:17:30 +0000468#if !defined(SQLITE_OMIT_WAL) || SQLITE_MAX_MMAP_SIZE>0
drhd1ab8062013-03-25 20:50:25 +0000469 { "munmap", (sqlite3_syscall_ptr)munmap, 0 },
drhe4a08f92016-01-08 19:17:30 +0000470#else
drha8299922016-01-08 22:31:00 +0000471 { "munmap", (sqlite3_syscall_ptr)0, 0 },
drhe4a08f92016-01-08 19:17:30 +0000472#endif
drh6226ca22015-11-24 15:06:28 +0000473#define osMunmap ((void*(*)(void*,size_t))aSyscall[23].pCurrent)
drhd1ab8062013-03-25 20:50:25 +0000474
drhe4a08f92016-01-08 19:17:30 +0000475#if HAVE_MREMAP && (!defined(SQLITE_OMIT_WAL) || SQLITE_MAX_MMAP_SIZE>0)
drhd1ab8062013-03-25 20:50:25 +0000476 { "mremap", (sqlite3_syscall_ptr)mremap, 0 },
477#else
478 { "mremap", (sqlite3_syscall_ptr)0, 0 },
479#endif
drh6226ca22015-11-24 15:06:28 +0000480#define osMremap ((void*(*)(void*,size_t,size_t,int,...))aSyscall[24].pCurrent)
481
drh24dbeae2016-01-08 22:18:00 +0000482#if !defined(SQLITE_OMIT_WAL) || SQLITE_MAX_MMAP_SIZE>0
danbc760632014-03-20 09:42:09 +0000483 { "getpagesize", (sqlite3_syscall_ptr)unixGetpagesize, 0 },
drh24dbeae2016-01-08 22:18:00 +0000484#else
485 { "getpagesize", (sqlite3_syscall_ptr)0, 0 },
486#endif
drh6226ca22015-11-24 15:06:28 +0000487#define osGetpagesize ((int(*)(void))aSyscall[25].pCurrent)
danbc760632014-03-20 09:42:09 +0000488
drhe2258a22016-01-12 00:37:55 +0000489#if defined(HAVE_READLINK)
dan245fdc62015-10-31 17:58:33 +0000490 { "readlink", (sqlite3_syscall_ptr)readlink, 0 },
drhe2258a22016-01-12 00:37:55 +0000491#else
492 { "readlink", (sqlite3_syscall_ptr)0, 0 },
493#endif
drh6226ca22015-11-24 15:06:28 +0000494#define osReadlink ((ssize_t(*)(const char*,char*,size_t))aSyscall[26].pCurrent)
dan245fdc62015-10-31 17:58:33 +0000495
danaf1b36b2016-01-25 18:43:05 +0000496#if defined(HAVE_LSTAT)
497 { "lstat", (sqlite3_syscall_ptr)lstat, 0 },
498#else
499 { "lstat", (sqlite3_syscall_ptr)0, 0 },
500#endif
dancaf6b152016-01-25 18:05:49 +0000501#define osLstat ((int(*)(const char*,struct stat*))aSyscall[27].pCurrent)
dan702eec12014-06-23 10:04:58 +0000502
drhe562be52011-03-02 18:01:10 +0000503}; /* End of the overrideable system calls */
drh99ab3b12011-03-02 15:09:07 +0000504
drh6226ca22015-11-24 15:06:28 +0000505
506/*
507** On some systems, calls to fchown() will trigger a message in a security
508** log if they come from non-root processes. So avoid calling fchown() if
509** we are not running as root.
510*/
511static int robustFchown(int fd, uid_t uid, gid_t gid){
drhe2258a22016-01-12 00:37:55 +0000512#if defined(HAVE_FCHOWN)
drh6226ca22015-11-24 15:06:28 +0000513 return osGeteuid() ? 0 : osFchown(fd,uid,gid);
drhe2258a22016-01-12 00:37:55 +0000514#else
515 return 0;
drh6226ca22015-11-24 15:06:28 +0000516#endif
517}
518
drh99ab3b12011-03-02 15:09:07 +0000519/*
520** This is the xSetSystemCall() method of sqlite3_vfs for all of the
drh1df30962011-03-02 19:06:42 +0000521** "unix" VFSes. Return SQLITE_OK opon successfully updating the
522** system call pointer, or SQLITE_NOTFOUND if there is no configurable
523** system call named zName.
drh99ab3b12011-03-02 15:09:07 +0000524*/
525static int unixSetSystemCall(
drh58ad5802011-03-23 22:02:23 +0000526 sqlite3_vfs *pNotUsed, /* The VFS pointer. Not used */
527 const char *zName, /* Name of system call to override */
528 sqlite3_syscall_ptr pNewFunc /* Pointer to new system call value */
drh99ab3b12011-03-02 15:09:07 +0000529){
drh58ad5802011-03-23 22:02:23 +0000530 unsigned int i;
drh1df30962011-03-02 19:06:42 +0000531 int rc = SQLITE_NOTFOUND;
drh58ad5802011-03-23 22:02:23 +0000532
533 UNUSED_PARAMETER(pNotUsed);
drh99ab3b12011-03-02 15:09:07 +0000534 if( zName==0 ){
535 /* If no zName is given, restore all system calls to their default
536 ** settings and return NULL
537 */
dan51438a72011-04-02 17:00:47 +0000538 rc = SQLITE_OK;
drh99ab3b12011-03-02 15:09:07 +0000539 for(i=0; i<sizeof(aSyscall)/sizeof(aSyscall[0]); i++){
540 if( aSyscall[i].pDefault ){
541 aSyscall[i].pCurrent = aSyscall[i].pDefault;
drh99ab3b12011-03-02 15:09:07 +0000542 }
543 }
544 }else{
545 /* If zName is specified, operate on only the one system call
546 ** specified.
547 */
548 for(i=0; i<sizeof(aSyscall)/sizeof(aSyscall[0]); i++){
549 if( strcmp(zName, aSyscall[i].zName)==0 ){
550 if( aSyscall[i].pDefault==0 ){
551 aSyscall[i].pDefault = aSyscall[i].pCurrent;
552 }
drh1df30962011-03-02 19:06:42 +0000553 rc = SQLITE_OK;
drh99ab3b12011-03-02 15:09:07 +0000554 if( pNewFunc==0 ) pNewFunc = aSyscall[i].pDefault;
555 aSyscall[i].pCurrent = pNewFunc;
556 break;
557 }
558 }
559 }
560 return rc;
561}
562
drh1df30962011-03-02 19:06:42 +0000563/*
564** Return the value of a system call. Return NULL if zName is not a
565** recognized system call name. NULL is also returned if the system call
566** is currently undefined.
567*/
drh58ad5802011-03-23 22:02:23 +0000568static sqlite3_syscall_ptr unixGetSystemCall(
569 sqlite3_vfs *pNotUsed,
570 const char *zName
571){
572 unsigned int i;
573
574 UNUSED_PARAMETER(pNotUsed);
drh1df30962011-03-02 19:06:42 +0000575 for(i=0; i<sizeof(aSyscall)/sizeof(aSyscall[0]); i++){
576 if( strcmp(zName, aSyscall[i].zName)==0 ) return aSyscall[i].pCurrent;
577 }
578 return 0;
579}
580
581/*
582** Return the name of the first system call after zName. If zName==NULL
583** then return the name of the first system call. Return NULL if zName
584** is the last system call or if zName is not the name of a valid
585** system call.
586*/
587static const char *unixNextSystemCall(sqlite3_vfs *p, const char *zName){
dan0fd7d862011-03-29 10:04:23 +0000588 int i = -1;
drh58ad5802011-03-23 22:02:23 +0000589
590 UNUSED_PARAMETER(p);
dan0fd7d862011-03-29 10:04:23 +0000591 if( zName ){
592 for(i=0; i<ArraySize(aSyscall)-1; i++){
593 if( strcmp(zName, aSyscall[i].zName)==0 ) break;
drh1df30962011-03-02 19:06:42 +0000594 }
595 }
dan0fd7d862011-03-29 10:04:23 +0000596 for(i++; i<ArraySize(aSyscall); i++){
597 if( aSyscall[i].pCurrent!=0 ) return aSyscall[i].zName;
drh1df30962011-03-02 19:06:42 +0000598 }
599 return 0;
600}
601
drhad4f1e52011-03-04 15:43:57 +0000602/*
drh77a3fdc2013-08-30 14:24:12 +0000603** Do not accept any file descriptor less than this value, in order to avoid
604** opening database file using file descriptors that are commonly used for
605** standard input, output, and error.
606*/
607#ifndef SQLITE_MINIMUM_FILE_DESCRIPTOR
608# define SQLITE_MINIMUM_FILE_DESCRIPTOR 3
609#endif
610
611/*
drh8c815d12012-02-13 20:16:37 +0000612** Invoke open(). Do so multiple times, until it either succeeds or
drh5adc60b2012-04-14 13:25:11 +0000613** fails for some reason other than EINTR.
drh8c815d12012-02-13 20:16:37 +0000614**
615** If the file creation mode "m" is 0 then set it to the default for
616** SQLite. The default is SQLITE_DEFAULT_FILE_PERMISSIONS (normally
617** 0644) as modified by the system umask. If m is not 0, then
618** make the file creation mode be exactly m ignoring the umask.
619**
620** The m parameter will be non-zero only when creating -wal, -journal,
621** and -shm files. We want those files to have *exactly* the same
622** permissions as their original database, unadulterated by the umask.
623** In that way, if a database file is -rw-rw-rw or -rw-rw-r-, and a
624** transaction crashes and leaves behind hot journals, then any
625** process that is able to write to the database will also be able to
626** recover the hot journals.
drhad4f1e52011-03-04 15:43:57 +0000627*/
drh8c815d12012-02-13 20:16:37 +0000628static int robust_open(const char *z, int f, mode_t m){
drh5adc60b2012-04-14 13:25:11 +0000629 int fd;
drhe1186ab2013-01-04 20:45:13 +0000630 mode_t m2 = m ? m : SQLITE_DEFAULT_FILE_PERMISSIONS;
drh5128d002013-08-30 06:20:23 +0000631 while(1){
drh5adc60b2012-04-14 13:25:11 +0000632#if defined(O_CLOEXEC)
633 fd = osOpen(z,f|O_CLOEXEC,m2);
634#else
635 fd = osOpen(z,f,m2);
636#endif
drh5128d002013-08-30 06:20:23 +0000637 if( fd<0 ){
638 if( errno==EINTR ) continue;
639 break;
640 }
drh77a3fdc2013-08-30 14:24:12 +0000641 if( fd>=SQLITE_MINIMUM_FILE_DESCRIPTOR ) break;
drh5128d002013-08-30 06:20:23 +0000642 osClose(fd);
643 sqlite3_log(SQLITE_WARNING,
644 "attempt to open \"%s\" as file descriptor %d", z, fd);
645 fd = -1;
646 if( osOpen("/dev/null", f, m)<0 ) break;
647 }
drhe1186ab2013-01-04 20:45:13 +0000648 if( fd>=0 ){
649 if( m!=0 ){
650 struct stat statbuf;
danb83c21e2013-03-05 15:27:34 +0000651 if( osFstat(fd, &statbuf)==0
652 && statbuf.st_size==0
drhcfc17692013-03-06 01:41:53 +0000653 && (statbuf.st_mode&0777)!=m
danb83c21e2013-03-05 15:27:34 +0000654 ){
drhe1186ab2013-01-04 20:45:13 +0000655 osFchmod(fd, m);
656 }
657 }
drh5adc60b2012-04-14 13:25:11 +0000658#if defined(FD_CLOEXEC) && (!defined(O_CLOEXEC) || O_CLOEXEC==0)
drhe1186ab2013-01-04 20:45:13 +0000659 osFcntl(fd, F_SETFD, osFcntl(fd, F_GETFD, 0) | FD_CLOEXEC);
drh5adc60b2012-04-14 13:25:11 +0000660#endif
drhe1186ab2013-01-04 20:45:13 +0000661 }
drh5adc60b2012-04-14 13:25:11 +0000662 return fd;
drhad4f1e52011-03-04 15:43:57 +0000663}
danielk197713adf8a2004-06-03 16:08:41 +0000664
drh107886a2008-11-21 22:21:50 +0000665/*
dan9359c7b2009-08-21 08:29:10 +0000666** Helper functions to obtain and relinquish the global mutex. The
drh8af6c222010-05-14 12:43:01 +0000667** global mutex is used to protect the unixInodeInfo and
dan9359c7b2009-08-21 08:29:10 +0000668** vxworksFileId objects used by this file, all of which may be
669** shared by multiple threads.
670**
671** Function unixMutexHeld() is used to assert() that the global mutex
672** is held when required. This function is only used as part of assert()
673** statements. e.g.
674**
675** unixEnterMutex()
676** assert( unixMutexHeld() );
677** unixEnterLeave()
drh107886a2008-11-21 22:21:50 +0000678*/
679static void unixEnterMutex(void){
mistachkin93de6532015-07-03 21:38:09 +0000680 sqlite3_mutex_enter(sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_VFS1));
drh107886a2008-11-21 22:21:50 +0000681}
682static void unixLeaveMutex(void){
mistachkin93de6532015-07-03 21:38:09 +0000683 sqlite3_mutex_leave(sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_VFS1));
drh107886a2008-11-21 22:21:50 +0000684}
dan9359c7b2009-08-21 08:29:10 +0000685#ifdef SQLITE_DEBUG
686static int unixMutexHeld(void) {
mistachkin93de6532015-07-03 21:38:09 +0000687 return sqlite3_mutex_held(sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_VFS1));
dan9359c7b2009-08-21 08:29:10 +0000688}
689#endif
drh107886a2008-11-21 22:21:50 +0000690
drh734c9862008-11-28 15:37:20 +0000691
mistachkinfb383e92015-04-16 03:24:38 +0000692#ifdef SQLITE_HAVE_OS_TRACE
drh734c9862008-11-28 15:37:20 +0000693/*
694** Helper function for printing out trace information from debugging
peter.d.reid60ec9142014-09-06 16:39:46 +0000695** binaries. This returns the string representation of the supplied
drh734c9862008-11-28 15:37:20 +0000696** integer lock-type.
697*/
drh308c2a52010-05-14 11:30:18 +0000698static const char *azFileLock(int eFileLock){
699 switch( eFileLock ){
dan9359c7b2009-08-21 08:29:10 +0000700 case NO_LOCK: return "NONE";
701 case SHARED_LOCK: return "SHARED";
702 case RESERVED_LOCK: return "RESERVED";
703 case PENDING_LOCK: return "PENDING";
704 case EXCLUSIVE_LOCK: return "EXCLUSIVE";
drh734c9862008-11-28 15:37:20 +0000705 }
706 return "ERROR";
707}
708#endif
709
710#ifdef SQLITE_LOCK_TRACE
711/*
712** Print out information about all locking operations.
drh6c7d5c52008-11-21 20:32:33 +0000713**
drh734c9862008-11-28 15:37:20 +0000714** This routine is used for troubleshooting locks on multithreaded
715** platforms. Enable by compiling with the -DSQLITE_LOCK_TRACE
716** command-line option on the compiler. This code is normally
717** turned off.
718*/
719static int lockTrace(int fd, int op, struct flock *p){
720 char *zOpName, *zType;
721 int s;
722 int savedErrno;
723 if( op==F_GETLK ){
724 zOpName = "GETLK";
725 }else if( op==F_SETLK ){
726 zOpName = "SETLK";
727 }else{
drh99ab3b12011-03-02 15:09:07 +0000728 s = osFcntl(fd, op, p);
drh734c9862008-11-28 15:37:20 +0000729 sqlite3DebugPrintf("fcntl unknown %d %d %d\n", fd, op, s);
730 return s;
731 }
732 if( p->l_type==F_RDLCK ){
733 zType = "RDLCK";
734 }else if( p->l_type==F_WRLCK ){
735 zType = "WRLCK";
736 }else if( p->l_type==F_UNLCK ){
737 zType = "UNLCK";
738 }else{
739 assert( 0 );
740 }
741 assert( p->l_whence==SEEK_SET );
drh99ab3b12011-03-02 15:09:07 +0000742 s = osFcntl(fd, op, p);
drh734c9862008-11-28 15:37:20 +0000743 savedErrno = errno;
744 sqlite3DebugPrintf("fcntl %d %d %s %s %d %d %d %d\n",
745 threadid, fd, zOpName, zType, (int)p->l_start, (int)p->l_len,
746 (int)p->l_pid, s);
747 if( s==(-1) && op==F_SETLK && (p->l_type==F_RDLCK || p->l_type==F_WRLCK) ){
748 struct flock l2;
749 l2 = *p;
drh99ab3b12011-03-02 15:09:07 +0000750 osFcntl(fd, F_GETLK, &l2);
drh734c9862008-11-28 15:37:20 +0000751 if( l2.l_type==F_RDLCK ){
752 zType = "RDLCK";
753 }else if( l2.l_type==F_WRLCK ){
754 zType = "WRLCK";
755 }else if( l2.l_type==F_UNLCK ){
756 zType = "UNLCK";
757 }else{
758 assert( 0 );
759 }
760 sqlite3DebugPrintf("fcntl-failure-reason: %s %d %d %d\n",
761 zType, (int)l2.l_start, (int)l2.l_len, (int)l2.l_pid);
762 }
763 errno = savedErrno;
764 return s;
765}
drh99ab3b12011-03-02 15:09:07 +0000766#undef osFcntl
767#define osFcntl lockTrace
drh734c9862008-11-28 15:37:20 +0000768#endif /* SQLITE_LOCK_TRACE */
769
drhff812312011-02-23 13:33:46 +0000770/*
771** Retry ftruncate() calls that fail due to EINTR
dan2ee53412014-09-06 16:49:40 +0000772**
drhe6d41732015-02-21 00:49:00 +0000773** All calls to ftruncate() within this file should be made through
774** this wrapper. On the Android platform, bypassing the logic below
775** could lead to a corrupt database.
drhff812312011-02-23 13:33:46 +0000776*/
drhff812312011-02-23 13:33:46 +0000777static int robust_ftruncate(int h, sqlite3_int64 sz){
778 int rc;
dan2ee53412014-09-06 16:49:40 +0000779#ifdef __ANDROID__
780 /* On Android, ftruncate() always uses 32-bit offsets, even if
781 ** _FILE_OFFSET_BITS=64 is defined. This means it is unsafe to attempt to
dan524a7332014-09-06 17:06:13 +0000782 ** truncate a file to any size larger than 2GiB. Silently ignore any
dan2ee53412014-09-06 16:49:40 +0000783 ** such attempts. */
784 if( sz>(sqlite3_int64)0x7FFFFFFF ){
785 rc = SQLITE_OK;
786 }else
787#endif
drh99ab3b12011-03-02 15:09:07 +0000788 do{ rc = osFtruncate(h,sz); }while( rc<0 && errno==EINTR );
drhff812312011-02-23 13:33:46 +0000789 return rc;
790}
drh734c9862008-11-28 15:37:20 +0000791
792/*
793** This routine translates a standard POSIX errno code into something
794** useful to the clients of the sqlite3 functions. Specifically, it is
795** intended to translate a variety of "try again" errors into SQLITE_BUSY
796** and a variety of "please close the file descriptor NOW" errors into
797** SQLITE_IOERR
798**
799** Errors during initialization of locks, or file system support for locks,
800** should handle ENOLCK, ENOTSUP, EOPNOTSUPP separately.
801*/
802static int sqliteErrorFromPosixError(int posixError, int sqliteIOErr) {
drh91c4def2015-11-25 14:00:07 +0000803 assert( (sqliteIOErr == SQLITE_IOERR_LOCK) ||
804 (sqliteIOErr == SQLITE_IOERR_UNLOCK) ||
805 (sqliteIOErr == SQLITE_IOERR_RDLOCK) ||
806 (sqliteIOErr == SQLITE_IOERR_CHECKRESERVEDLOCK) );
drh734c9862008-11-28 15:37:20 +0000807 switch (posixError) {
drh91c4def2015-11-25 14:00:07 +0000808 case EACCES:
drh734c9862008-11-28 15:37:20 +0000809 case EAGAIN:
810 case ETIMEDOUT:
811 case EBUSY:
812 case EINTR:
813 case ENOLCK:
814 /* random NFS retry error, unless during file system support
815 * introspection, in which it actually means what it says */
816 return SQLITE_BUSY;
817
drh734c9862008-11-28 15:37:20 +0000818 case EPERM:
819 return SQLITE_PERM;
820
drh734c9862008-11-28 15:37:20 +0000821 default:
822 return sqliteIOErr;
823 }
824}
825
826
drh734c9862008-11-28 15:37:20 +0000827/******************************************************************************
828****************** Begin Unique File ID Utility Used By VxWorks ***************
829**
830** On most versions of unix, we can get a unique ID for a file by concatenating
831** the device number and the inode number. But this does not work on VxWorks.
832** On VxWorks, a unique file id must be based on the canonical filename.
833**
834** A pointer to an instance of the following structure can be used as a
835** unique file ID in VxWorks. Each instance of this structure contains
836** a copy of the canonical filename. There is also a reference count.
837** The structure is reclaimed when the number of pointers to it drops to
838** zero.
839**
840** There are never very many files open at one time and lookups are not
841** a performance-critical path, so it is sufficient to put these
842** structures on a linked list.
843*/
844struct vxworksFileId {
845 struct vxworksFileId *pNext; /* Next in a list of them all */
846 int nRef; /* Number of references to this one */
847 int nName; /* Length of the zCanonicalName[] string */
848 char *zCanonicalName; /* Canonical filename */
849};
850
851#if OS_VXWORKS
852/*
drh9b35ea62008-11-29 02:20:26 +0000853** All unique filenames are held on a linked list headed by this
drh734c9862008-11-28 15:37:20 +0000854** variable:
855*/
856static struct vxworksFileId *vxworksFileList = 0;
857
858/*
859** Simplify a filename into its canonical form
860** by making the following changes:
861**
862** * removing any trailing and duplicate /
drh9b35ea62008-11-29 02:20:26 +0000863** * convert /./ into just /
864** * convert /A/../ where A is any simple name into just /
drh734c9862008-11-28 15:37:20 +0000865**
866** Changes are made in-place. Return the new name length.
867**
868** The original filename is in z[0..n-1]. Return the number of
869** characters in the simplified name.
870*/
871static int vxworksSimplifyName(char *z, int n){
872 int i, j;
873 while( n>1 && z[n-1]=='/' ){ n--; }
874 for(i=j=0; i<n; i++){
875 if( z[i]=='/' ){
876 if( z[i+1]=='/' ) continue;
877 if( z[i+1]=='.' && i+2<n && z[i+2]=='/' ){
878 i += 1;
879 continue;
880 }
881 if( z[i+1]=='.' && i+3<n && z[i+2]=='.' && z[i+3]=='/' ){
882 while( j>0 && z[j-1]!='/' ){ j--; }
883 if( j>0 ){ j--; }
884 i += 2;
885 continue;
886 }
887 }
888 z[j++] = z[i];
889 }
890 z[j] = 0;
891 return j;
892}
893
894/*
895** Find a unique file ID for the given absolute pathname. Return
896** a pointer to the vxworksFileId object. This pointer is the unique
897** file ID.
898**
899** The nRef field of the vxworksFileId object is incremented before
900** the object is returned. A new vxworksFileId object is created
901** and added to the global list if necessary.
902**
903** If a memory allocation error occurs, return NULL.
904*/
905static struct vxworksFileId *vxworksFindFileId(const char *zAbsoluteName){
906 struct vxworksFileId *pNew; /* search key and new file ID */
907 struct vxworksFileId *pCandidate; /* For looping over existing file IDs */
908 int n; /* Length of zAbsoluteName string */
909
910 assert( zAbsoluteName[0]=='/' );
drhea678832008-12-10 19:26:22 +0000911 n = (int)strlen(zAbsoluteName);
drhf3cdcdc2015-04-29 16:50:28 +0000912 pNew = sqlite3_malloc64( sizeof(*pNew) + (n+1) );
drh734c9862008-11-28 15:37:20 +0000913 if( pNew==0 ) return 0;
914 pNew->zCanonicalName = (char*)&pNew[1];
915 memcpy(pNew->zCanonicalName, zAbsoluteName, n+1);
916 n = vxworksSimplifyName(pNew->zCanonicalName, n);
917
918 /* Search for an existing entry that matching the canonical name.
919 ** If found, increment the reference count and return a pointer to
920 ** the existing file ID.
921 */
922 unixEnterMutex();
923 for(pCandidate=vxworksFileList; pCandidate; pCandidate=pCandidate->pNext){
924 if( pCandidate->nName==n
925 && memcmp(pCandidate->zCanonicalName, pNew->zCanonicalName, n)==0
926 ){
927 sqlite3_free(pNew);
928 pCandidate->nRef++;
929 unixLeaveMutex();
930 return pCandidate;
931 }
932 }
933
934 /* No match was found. We will make a new file ID */
935 pNew->nRef = 1;
936 pNew->nName = n;
937 pNew->pNext = vxworksFileList;
938 vxworksFileList = pNew;
939 unixLeaveMutex();
940 return pNew;
941}
942
943/*
944** Decrement the reference count on a vxworksFileId object. Free
945** the object when the reference count reaches zero.
946*/
947static void vxworksReleaseFileId(struct vxworksFileId *pId){
948 unixEnterMutex();
949 assert( pId->nRef>0 );
950 pId->nRef--;
951 if( pId->nRef==0 ){
952 struct vxworksFileId **pp;
953 for(pp=&vxworksFileList; *pp && *pp!=pId; pp = &((*pp)->pNext)){}
954 assert( *pp==pId );
955 *pp = pId->pNext;
956 sqlite3_free(pId);
957 }
958 unixLeaveMutex();
959}
960#endif /* OS_VXWORKS */
961/*************** End of Unique File ID Utility Used By VxWorks ****************
962******************************************************************************/
963
964
965/******************************************************************************
966*************************** Posix Advisory Locking ****************************
967**
drh9b35ea62008-11-29 02:20:26 +0000968** POSIX advisory locks are broken by design. ANSI STD 1003.1 (1996)
drhbbd42a62004-05-22 17:41:58 +0000969** section 6.5.2.2 lines 483 through 490 specify that when a process
970** sets or clears a lock, that operation overrides any prior locks set
971** by the same process. It does not explicitly say so, but this implies
972** that it overrides locks set by the same process using a different
973** file descriptor. Consider this test case:
drh6c7d5c52008-11-21 20:32:33 +0000974**
975** int fd1 = open("./file1", O_RDWR|O_CREAT, 0644);
drhbbd42a62004-05-22 17:41:58 +0000976** int fd2 = open("./file2", O_RDWR|O_CREAT, 0644);
977**
978** Suppose ./file1 and ./file2 are really the same file (because
979** one is a hard or symbolic link to the other) then if you set
980** an exclusive lock on fd1, then try to get an exclusive lock
981** on fd2, it works. I would have expected the second lock to
982** fail since there was already a lock on the file due to fd1.
983** But not so. Since both locks came from the same process, the
984** second overrides the first, even though they were on different
985** file descriptors opened on different file names.
986**
drh734c9862008-11-28 15:37:20 +0000987** This means that we cannot use POSIX locks to synchronize file access
988** among competing threads of the same process. POSIX locks will work fine
drhbbd42a62004-05-22 17:41:58 +0000989** to synchronize access for threads in separate processes, but not
990** threads within the same process.
991**
992** To work around the problem, SQLite has to manage file locks internally
993** on its own. Whenever a new database is opened, we have to find the
994** specific inode of the database file (the inode is determined by the
995** st_dev and st_ino fields of the stat structure that fstat() fills in)
996** and check for locks already existing on that inode. When locks are
997** created or removed, we have to look at our own internal record of the
998** locks to see if another thread has previously set a lock on that same
999** inode.
1000**
drh9b35ea62008-11-29 02:20:26 +00001001** (Aside: The use of inode numbers as unique IDs does not work on VxWorks.
1002** For VxWorks, we have to use the alternative unique ID system based on
1003** canonical filename and implemented in the previous division.)
1004**
danielk1977ad94b582007-08-20 06:44:22 +00001005** The sqlite3_file structure for POSIX is no longer just an integer file
drhbbd42a62004-05-22 17:41:58 +00001006** descriptor. It is now a structure that holds the integer file
1007** descriptor and a pointer to a structure that describes the internal
1008** locks on the corresponding inode. There is one locking structure
danielk1977ad94b582007-08-20 06:44:22 +00001009** per inode, so if the same inode is opened twice, both unixFile structures
drhbbd42a62004-05-22 17:41:58 +00001010** point to the same locking structure. The locking structure keeps
1011** a reference count (so we will know when to delete it) and a "cnt"
1012** field that tells us its internal lock status. cnt==0 means the
1013** file is unlocked. cnt==-1 means the file has an exclusive lock.
1014** cnt>0 means there are cnt shared locks on the file.
1015**
1016** Any attempt to lock or unlock a file first checks the locking
1017** structure. The fcntl() system call is only invoked to set a
1018** POSIX lock if the internal lock structure transitions between
1019** a locked and an unlocked state.
1020**
drh734c9862008-11-28 15:37:20 +00001021** But wait: there are yet more problems with POSIX advisory locks.
drhbbd42a62004-05-22 17:41:58 +00001022**
1023** If you close a file descriptor that points to a file that has locks,
1024** all locks on that file that are owned by the current process are
drh8af6c222010-05-14 12:43:01 +00001025** released. To work around this problem, each unixInodeInfo object
1026** maintains a count of the number of pending locks on tha inode.
1027** When an attempt is made to close an unixFile, if there are
danielk1977ad94b582007-08-20 06:44:22 +00001028** other unixFile open on the same inode that are holding locks, the call
drhbbd42a62004-05-22 17:41:58 +00001029** to close() the file descriptor is deferred until all of the locks clear.
drh8af6c222010-05-14 12:43:01 +00001030** The unixInodeInfo structure keeps a list of file descriptors that need to
drhbbd42a62004-05-22 17:41:58 +00001031** be closed and that list is walked (and cleared) when the last lock
1032** clears.
1033**
drh9b35ea62008-11-29 02:20:26 +00001034** Yet another problem: LinuxThreads do not play well with posix locks.
drh5fdae772004-06-29 03:29:00 +00001035**
drh9b35ea62008-11-29 02:20:26 +00001036** Many older versions of linux use the LinuxThreads library which is
1037** not posix compliant. Under LinuxThreads, a lock created by thread
drh734c9862008-11-28 15:37:20 +00001038** A cannot be modified or overridden by a different thread B.
1039** Only thread A can modify the lock. Locking behavior is correct
1040** if the appliation uses the newer Native Posix Thread Library (NPTL)
1041** on linux - with NPTL a lock created by thread A can override locks
1042** in thread B. But there is no way to know at compile-time which
1043** threading library is being used. So there is no way to know at
1044** compile-time whether or not thread A can override locks on thread B.
drh8af6c222010-05-14 12:43:01 +00001045** One has to do a run-time check to discover the behavior of the
drh734c9862008-11-28 15:37:20 +00001046** current process.
drh5fdae772004-06-29 03:29:00 +00001047**
drh8af6c222010-05-14 12:43:01 +00001048** SQLite used to support LinuxThreads. But support for LinuxThreads
1049** was dropped beginning with version 3.7.0. SQLite will still work with
1050** LinuxThreads provided that (1) there is no more than one connection
1051** per database file in the same process and (2) database connections
1052** do not move across threads.
drhbbd42a62004-05-22 17:41:58 +00001053*/
1054
1055/*
1056** An instance of the following structure serves as the key used
drh8af6c222010-05-14 12:43:01 +00001057** to locate a particular unixInodeInfo object.
drh6c7d5c52008-11-21 20:32:33 +00001058*/
1059struct unixFileId {
drh107886a2008-11-21 22:21:50 +00001060 dev_t dev; /* Device number */
drh6c7d5c52008-11-21 20:32:33 +00001061#if OS_VXWORKS
drh107886a2008-11-21 22:21:50 +00001062 struct vxworksFileId *pId; /* Unique file ID for vxworks. */
drh6c7d5c52008-11-21 20:32:33 +00001063#else
drh107886a2008-11-21 22:21:50 +00001064 ino_t ino; /* Inode number */
drh6c7d5c52008-11-21 20:32:33 +00001065#endif
1066};
1067
1068/*
drhbbd42a62004-05-22 17:41:58 +00001069** An instance of the following structure is allocated for each open
drh9b35ea62008-11-29 02:20:26 +00001070** inode. Or, on LinuxThreads, there is one of these structures for
1071** each inode opened by each thread.
drhbbd42a62004-05-22 17:41:58 +00001072**
danielk1977ad94b582007-08-20 06:44:22 +00001073** A single inode can have multiple file descriptors, so each unixFile
drhbbd42a62004-05-22 17:41:58 +00001074** structure contains a pointer to an instance of this object and this
danielk1977ad94b582007-08-20 06:44:22 +00001075** object keeps a count of the number of unixFile pointing to it.
drhbbd42a62004-05-22 17:41:58 +00001076*/
drh8af6c222010-05-14 12:43:01 +00001077struct unixInodeInfo {
1078 struct unixFileId fileId; /* The lookup key */
drh308c2a52010-05-14 11:30:18 +00001079 int nShared; /* Number of SHARED locks held */
drha7e61d82011-03-12 17:02:57 +00001080 unsigned char eFileLock; /* One of SHARED_LOCK, RESERVED_LOCK etc. */
1081 unsigned char bProcessLock; /* An exclusive process lock is held */
drh734c9862008-11-28 15:37:20 +00001082 int nRef; /* Number of pointers to this structure */
drhd91c68f2010-05-14 14:52:25 +00001083 unixShmNode *pShmNode; /* Shared memory associated with this inode */
1084 int nLock; /* Number of outstanding file locks */
1085 UnixUnusedFd *pUnused; /* Unused file descriptors to close */
1086 unixInodeInfo *pNext; /* List of all unixInodeInfo objects */
1087 unixInodeInfo *pPrev; /* .... doubly linked */
drhd4a80312011-04-15 14:33:20 +00001088#if SQLITE_ENABLE_LOCKING_STYLE
drh7ed97b92010-01-20 13:07:21 +00001089 unsigned long long sharedByte; /* for AFP simulated shared lock */
1090#endif
drh6c7d5c52008-11-21 20:32:33 +00001091#if OS_VXWORKS
drh8af6c222010-05-14 12:43:01 +00001092 sem_t *pSem; /* Named POSIX semaphore */
1093 char aSemName[MAX_PATHNAME+2]; /* Name of that semaphore */
chw97185482008-11-17 08:05:31 +00001094#endif
drhbbd42a62004-05-22 17:41:58 +00001095};
1096
drhda0e7682008-07-30 15:27:54 +00001097/*
drh8af6c222010-05-14 12:43:01 +00001098** A lists of all unixInodeInfo objects.
drhbbd42a62004-05-22 17:41:58 +00001099*/
drhd91c68f2010-05-14 14:52:25 +00001100static unixInodeInfo *inodeList = 0;
drh5fdae772004-06-29 03:29:00 +00001101
drh5fdae772004-06-29 03:29:00 +00001102/*
dane18d4952011-02-21 11:46:24 +00001103**
drhaaeaa182015-11-24 15:12:47 +00001104** This function - unixLogErrorAtLine(), is only ever called via the macro
dane18d4952011-02-21 11:46:24 +00001105** unixLogError().
1106**
1107** It is invoked after an error occurs in an OS function and errno has been
1108** set. It logs a message using sqlite3_log() containing the current value of
1109** errno and, if possible, the human-readable equivalent from strerror() or
1110** strerror_r().
1111**
1112** The first argument passed to the macro should be the error code that
1113** will be returned to SQLite (e.g. SQLITE_IOERR_DELETE, SQLITE_CANTOPEN).
1114** The two subsequent arguments should be the name of the OS function that
mistachkind5578432012-08-25 10:01:29 +00001115** failed (e.g. "unlink", "open") and the associated file-system path,
dane18d4952011-02-21 11:46:24 +00001116** if any.
1117*/
drh0e9365c2011-03-02 02:08:13 +00001118#define unixLogError(a,b,c) unixLogErrorAtLine(a,b,c,__LINE__)
1119static int unixLogErrorAtLine(
dane18d4952011-02-21 11:46:24 +00001120 int errcode, /* SQLite error code */
1121 const char *zFunc, /* Name of OS function that failed */
1122 const char *zPath, /* File path associated with error */
1123 int iLine /* Source line number where error occurred */
1124){
1125 char *zErr; /* Message from strerror() or equivalent */
drh0e9365c2011-03-02 02:08:13 +00001126 int iErrno = errno; /* Saved syscall error number */
dane18d4952011-02-21 11:46:24 +00001127
1128 /* If this is not a threadsafe build (SQLITE_THREADSAFE==0), then use
1129 ** the strerror() function to obtain the human-readable error message
1130 ** equivalent to errno. Otherwise, use strerror_r().
1131 */
1132#if SQLITE_THREADSAFE && defined(HAVE_STRERROR_R)
1133 char aErr[80];
1134 memset(aErr, 0, sizeof(aErr));
1135 zErr = aErr;
1136
1137 /* If STRERROR_R_CHAR_P (set by autoconf scripts) or __USE_GNU is defined,
mistachkind5578432012-08-25 10:01:29 +00001138 ** assume that the system provides the GNU version of strerror_r() that
dane18d4952011-02-21 11:46:24 +00001139 ** returns a pointer to a buffer containing the error message. That pointer
1140 ** may point to aErr[], or it may point to some static storage somewhere.
1141 ** Otherwise, assume that the system provides the POSIX version of
1142 ** strerror_r(), which always writes an error message into aErr[].
1143 **
1144 ** If the code incorrectly assumes that it is the POSIX version that is
1145 ** available, the error message will often be an empty string. Not a
1146 ** huge problem. Incorrectly concluding that the GNU version is available
1147 ** could lead to a segfault though.
1148 */
1149#if defined(STRERROR_R_CHAR_P) || defined(__USE_GNU)
1150 zErr =
1151# endif
drh0e9365c2011-03-02 02:08:13 +00001152 strerror_r(iErrno, aErr, sizeof(aErr)-1);
dane18d4952011-02-21 11:46:24 +00001153
1154#elif SQLITE_THREADSAFE
1155 /* This is a threadsafe build, but strerror_r() is not available. */
1156 zErr = "";
1157#else
1158 /* Non-threadsafe build, use strerror(). */
drh0e9365c2011-03-02 02:08:13 +00001159 zErr = strerror(iErrno);
dane18d4952011-02-21 11:46:24 +00001160#endif
1161
drh0e9365c2011-03-02 02:08:13 +00001162 if( zPath==0 ) zPath = "";
dane18d4952011-02-21 11:46:24 +00001163 sqlite3_log(errcode,
drh0e9365c2011-03-02 02:08:13 +00001164 "os_unix.c:%d: (%d) %s(%s) - %s",
1165 iLine, iErrno, zFunc, zPath, zErr
dane18d4952011-02-21 11:46:24 +00001166 );
1167
1168 return errcode;
1169}
1170
drh0e9365c2011-03-02 02:08:13 +00001171/*
1172** Close a file descriptor.
1173**
1174** We assume that close() almost always works, since it is only in a
1175** very sick application or on a very sick platform that it might fail.
1176** If it does fail, simply leak the file descriptor, but do log the
1177** error.
1178**
1179** Note that it is not safe to retry close() after EINTR since the
1180** file descriptor might have already been reused by another thread.
1181** So we don't even try to recover from an EINTR. Just log the error
1182** and move on.
1183*/
1184static void robust_close(unixFile *pFile, int h, int lineno){
drh99ab3b12011-03-02 15:09:07 +00001185 if( osClose(h) ){
drh0e9365c2011-03-02 02:08:13 +00001186 unixLogErrorAtLine(SQLITE_IOERR_CLOSE, "close",
1187 pFile ? pFile->zPath : 0, lineno);
1188 }
1189}
dane18d4952011-02-21 11:46:24 +00001190
1191/*
drhe6d41732015-02-21 00:49:00 +00001192** Set the pFile->lastErrno. Do this in a subroutine as that provides
1193** a convenient place to set a breakpoint.
drh4bf66fd2015-02-19 02:43:02 +00001194*/
1195static void storeLastErrno(unixFile *pFile, int error){
1196 pFile->lastErrno = error;
1197}
1198
1199/*
danb0ac3e32010-06-16 10:55:42 +00001200** Close all file descriptors accumuated in the unixInodeInfo->pUnused list.
danb0ac3e32010-06-16 10:55:42 +00001201*/
drh0e9365c2011-03-02 02:08:13 +00001202static void closePendingFds(unixFile *pFile){
danb0ac3e32010-06-16 10:55:42 +00001203 unixInodeInfo *pInode = pFile->pInode;
danb0ac3e32010-06-16 10:55:42 +00001204 UnixUnusedFd *p;
1205 UnixUnusedFd *pNext;
1206 for(p=pInode->pUnused; p; p=pNext){
1207 pNext = p->pNext;
drh0e9365c2011-03-02 02:08:13 +00001208 robust_close(pFile, p->fd, __LINE__);
1209 sqlite3_free(p);
danb0ac3e32010-06-16 10:55:42 +00001210 }
drh0e9365c2011-03-02 02:08:13 +00001211 pInode->pUnused = 0;
danb0ac3e32010-06-16 10:55:42 +00001212}
1213
1214/*
drh8af6c222010-05-14 12:43:01 +00001215** Release a unixInodeInfo structure previously allocated by findInodeInfo().
dan9359c7b2009-08-21 08:29:10 +00001216**
1217** The mutex entered using the unixEnterMutex() function must be held
1218** when this function is called.
drh6c7d5c52008-11-21 20:32:33 +00001219*/
danb0ac3e32010-06-16 10:55:42 +00001220static void releaseInodeInfo(unixFile *pFile){
1221 unixInodeInfo *pInode = pFile->pInode;
dan9359c7b2009-08-21 08:29:10 +00001222 assert( unixMutexHeld() );
dan661d71a2011-03-30 19:08:03 +00001223 if( ALWAYS(pInode) ){
drh8af6c222010-05-14 12:43:01 +00001224 pInode->nRef--;
1225 if( pInode->nRef==0 ){
drhd91c68f2010-05-14 14:52:25 +00001226 assert( pInode->pShmNode==0 );
danb0ac3e32010-06-16 10:55:42 +00001227 closePendingFds(pFile);
drh8af6c222010-05-14 12:43:01 +00001228 if( pInode->pPrev ){
1229 assert( pInode->pPrev->pNext==pInode );
1230 pInode->pPrev->pNext = pInode->pNext;
drhda0e7682008-07-30 15:27:54 +00001231 }else{
drh8af6c222010-05-14 12:43:01 +00001232 assert( inodeList==pInode );
1233 inodeList = pInode->pNext;
drhda0e7682008-07-30 15:27:54 +00001234 }
drh8af6c222010-05-14 12:43:01 +00001235 if( pInode->pNext ){
1236 assert( pInode->pNext->pPrev==pInode );
1237 pInode->pNext->pPrev = pInode->pPrev;
drhda0e7682008-07-30 15:27:54 +00001238 }
drh8af6c222010-05-14 12:43:01 +00001239 sqlite3_free(pInode);
danielk1977e339d652008-06-28 11:23:00 +00001240 }
drhbbd42a62004-05-22 17:41:58 +00001241 }
1242}
1243
1244/*
drh8af6c222010-05-14 12:43:01 +00001245** Given a file descriptor, locate the unixInodeInfo object that
1246** describes that file descriptor. Create a new one if necessary. The
1247** return value might be uninitialized if an error occurs.
drh6c7d5c52008-11-21 20:32:33 +00001248**
dan9359c7b2009-08-21 08:29:10 +00001249** The mutex entered using the unixEnterMutex() function must be held
1250** when this function is called.
1251**
drh6c7d5c52008-11-21 20:32:33 +00001252** Return an appropriate error code.
1253*/
drh8af6c222010-05-14 12:43:01 +00001254static int findInodeInfo(
drh6c7d5c52008-11-21 20:32:33 +00001255 unixFile *pFile, /* Unix file with file desc used in the key */
drhd91c68f2010-05-14 14:52:25 +00001256 unixInodeInfo **ppInode /* Return the unixInodeInfo object here */
drh6c7d5c52008-11-21 20:32:33 +00001257){
1258 int rc; /* System call return code */
1259 int fd; /* The file descriptor for pFile */
drhd91c68f2010-05-14 14:52:25 +00001260 struct unixFileId fileId; /* Lookup key for the unixInodeInfo */
1261 struct stat statbuf; /* Low-level file information */
1262 unixInodeInfo *pInode = 0; /* Candidate unixInodeInfo object */
drh6c7d5c52008-11-21 20:32:33 +00001263
dan9359c7b2009-08-21 08:29:10 +00001264 assert( unixMutexHeld() );
1265
drh6c7d5c52008-11-21 20:32:33 +00001266 /* Get low-level information about the file that we can used to
1267 ** create a unique name for the file.
1268 */
1269 fd = pFile->h;
drh99ab3b12011-03-02 15:09:07 +00001270 rc = osFstat(fd, &statbuf);
drh6c7d5c52008-11-21 20:32:33 +00001271 if( rc!=0 ){
drh4bf66fd2015-02-19 02:43:02 +00001272 storeLastErrno(pFile, errno);
drh40fe8d32015-11-30 20:36:26 +00001273#if defined(EOVERFLOW) && defined(SQLITE_DISABLE_LFS)
drh6c7d5c52008-11-21 20:32:33 +00001274 if( pFile->lastErrno==EOVERFLOW ) return SQLITE_NOLFS;
1275#endif
1276 return SQLITE_IOERR;
1277 }
1278
drheb0d74f2009-02-03 15:27:02 +00001279#ifdef __APPLE__
drh6c7d5c52008-11-21 20:32:33 +00001280 /* On OS X on an msdos filesystem, the inode number is reported
1281 ** incorrectly for zero-size files. See ticket #3260. To work
1282 ** around this problem (we consider it a bug in OS X, not SQLite)
1283 ** we always increase the file size to 1 by writing a single byte
1284 ** prior to accessing the inode number. The one byte written is
1285 ** an ASCII 'S' character which also happens to be the first byte
1286 ** in the header of every SQLite database. In this way, if there
1287 ** is a race condition such that another thread has already populated
1288 ** the first page of the database, no damage is done.
1289 */
drh7ed97b92010-01-20 13:07:21 +00001290 if( statbuf.st_size==0 && (pFile->fsFlags & SQLITE_FSFLAGS_IS_MSDOS)!=0 ){
drhe562be52011-03-02 18:01:10 +00001291 do{ rc = osWrite(fd, "S", 1); }while( rc<0 && errno==EINTR );
drheb0d74f2009-02-03 15:27:02 +00001292 if( rc!=1 ){
drh4bf66fd2015-02-19 02:43:02 +00001293 storeLastErrno(pFile, errno);
drheb0d74f2009-02-03 15:27:02 +00001294 return SQLITE_IOERR;
1295 }
drh99ab3b12011-03-02 15:09:07 +00001296 rc = osFstat(fd, &statbuf);
drh6c7d5c52008-11-21 20:32:33 +00001297 if( rc!=0 ){
drh4bf66fd2015-02-19 02:43:02 +00001298 storeLastErrno(pFile, errno);
drh6c7d5c52008-11-21 20:32:33 +00001299 return SQLITE_IOERR;
1300 }
1301 }
drheb0d74f2009-02-03 15:27:02 +00001302#endif
drh6c7d5c52008-11-21 20:32:33 +00001303
drh8af6c222010-05-14 12:43:01 +00001304 memset(&fileId, 0, sizeof(fileId));
1305 fileId.dev = statbuf.st_dev;
drh6c7d5c52008-11-21 20:32:33 +00001306#if OS_VXWORKS
drh8af6c222010-05-14 12:43:01 +00001307 fileId.pId = pFile->pId;
drh6c7d5c52008-11-21 20:32:33 +00001308#else
drh8af6c222010-05-14 12:43:01 +00001309 fileId.ino = statbuf.st_ino;
drh6c7d5c52008-11-21 20:32:33 +00001310#endif
drh8af6c222010-05-14 12:43:01 +00001311 pInode = inodeList;
1312 while( pInode && memcmp(&fileId, &pInode->fileId, sizeof(fileId)) ){
1313 pInode = pInode->pNext;
drh6c7d5c52008-11-21 20:32:33 +00001314 }
drh8af6c222010-05-14 12:43:01 +00001315 if( pInode==0 ){
drhf3cdcdc2015-04-29 16:50:28 +00001316 pInode = sqlite3_malloc64( sizeof(*pInode) );
drh8af6c222010-05-14 12:43:01 +00001317 if( pInode==0 ){
mistachkinfad30392016-02-13 23:43:46 +00001318 return SQLITE_NOMEM_BKPT;
drh6c7d5c52008-11-21 20:32:33 +00001319 }
drh8af6c222010-05-14 12:43:01 +00001320 memset(pInode, 0, sizeof(*pInode));
1321 memcpy(&pInode->fileId, &fileId, sizeof(fileId));
1322 pInode->nRef = 1;
1323 pInode->pNext = inodeList;
1324 pInode->pPrev = 0;
1325 if( inodeList ) inodeList->pPrev = pInode;
1326 inodeList = pInode;
1327 }else{
1328 pInode->nRef++;
drh6c7d5c52008-11-21 20:32:33 +00001329 }
drh8af6c222010-05-14 12:43:01 +00001330 *ppInode = pInode;
1331 return SQLITE_OK;
drh6c7d5c52008-11-21 20:32:33 +00001332}
drh6c7d5c52008-11-21 20:32:33 +00001333
drhb959a012013-12-07 12:29:22 +00001334/*
1335** Return TRUE if pFile has been renamed or unlinked since it was first opened.
1336*/
1337static int fileHasMoved(unixFile *pFile){
drh61ffea52014-08-12 12:19:25 +00001338#if OS_VXWORKS
1339 return pFile->pInode!=0 && pFile->pId!=pFile->pInode->fileId.pId;
1340#else
drhb959a012013-12-07 12:29:22 +00001341 struct stat buf;
1342 return pFile->pInode!=0 &&
drh61ffea52014-08-12 12:19:25 +00001343 (osStat(pFile->zPath, &buf)!=0 || buf.st_ino!=pFile->pInode->fileId.ino);
drh91be7dc2014-08-11 13:53:30 +00001344#endif
drhb959a012013-12-07 12:29:22 +00001345}
1346
aswift5b1a2562008-08-22 00:22:35 +00001347
1348/*
drhfbc7e882013-04-11 01:16:15 +00001349** Check a unixFile that is a database. Verify the following:
1350**
1351** (1) There is exactly one hard link on the file
1352** (2) The file is not a symbolic link
1353** (3) The file has not been renamed or unlinked
1354**
1355** Issue sqlite3_log(SQLITE_WARNING,...) messages if anything is not right.
1356*/
1357static void verifyDbFile(unixFile *pFile){
1358 struct stat buf;
1359 int rc;
drh86151e82015-12-08 14:37:16 +00001360
1361 /* These verifications occurs for the main database only */
1362 if( pFile->ctrlFlags & UNIXFILE_NOLOCK ) return;
1363
drhfbc7e882013-04-11 01:16:15 +00001364 rc = osFstat(pFile->h, &buf);
1365 if( rc!=0 ){
1366 sqlite3_log(SQLITE_WARNING, "cannot fstat db file %s", pFile->zPath);
drhfbc7e882013-04-11 01:16:15 +00001367 return;
1368 }
drh6369bc32016-03-21 16:06:42 +00001369 if( buf.st_nlink==0 ){
drhfbc7e882013-04-11 01:16:15 +00001370 sqlite3_log(SQLITE_WARNING, "file unlinked while open: %s", pFile->zPath);
drhfbc7e882013-04-11 01:16:15 +00001371 return;
1372 }
1373 if( buf.st_nlink>1 ){
1374 sqlite3_log(SQLITE_WARNING, "multiple links to file: %s", pFile->zPath);
drhfbc7e882013-04-11 01:16:15 +00001375 return;
1376 }
drhb959a012013-12-07 12:29:22 +00001377 if( fileHasMoved(pFile) ){
drhfbc7e882013-04-11 01:16:15 +00001378 sqlite3_log(SQLITE_WARNING, "file renamed while open: %s", pFile->zPath);
drhfbc7e882013-04-11 01:16:15 +00001379 return;
1380 }
1381}
1382
1383
1384/*
danielk197713adf8a2004-06-03 16:08:41 +00001385** This routine checks if there is a RESERVED lock held on the specified
aswift5b1a2562008-08-22 00:22:35 +00001386** file by this or any other process. If such a lock is held, set *pResOut
1387** to a non-zero value otherwise *pResOut is set to zero. The return value
1388** is set to SQLITE_OK unless an I/O error occurs during lock checking.
danielk197713adf8a2004-06-03 16:08:41 +00001389*/
danielk1977861f7452008-06-05 11:39:11 +00001390static int unixCheckReservedLock(sqlite3_file *id, int *pResOut){
aswift5b1a2562008-08-22 00:22:35 +00001391 int rc = SQLITE_OK;
1392 int reserved = 0;
drh054889e2005-11-30 03:20:31 +00001393 unixFile *pFile = (unixFile*)id;
danielk197713adf8a2004-06-03 16:08:41 +00001394
danielk1977861f7452008-06-05 11:39:11 +00001395 SimulateIOError( return SQLITE_IOERR_CHECKRESERVEDLOCK; );
1396
drh054889e2005-11-30 03:20:31 +00001397 assert( pFile );
drha8de1e12015-11-30 00:05:39 +00001398 assert( pFile->eFileLock<=SHARED_LOCK );
drh8af6c222010-05-14 12:43:01 +00001399 unixEnterMutex(); /* Because pFile->pInode is shared across threads */
danielk197713adf8a2004-06-03 16:08:41 +00001400
1401 /* Check if a thread in this process holds such a lock */
drh8af6c222010-05-14 12:43:01 +00001402 if( pFile->pInode->eFileLock>SHARED_LOCK ){
aswift5b1a2562008-08-22 00:22:35 +00001403 reserved = 1;
danielk197713adf8a2004-06-03 16:08:41 +00001404 }
1405
drh2ac3ee92004-06-07 16:27:46 +00001406 /* Otherwise see if some other process holds it.
danielk197713adf8a2004-06-03 16:08:41 +00001407 */
danielk197709480a92009-02-09 05:32:32 +00001408#ifndef __DJGPP__
drha7e61d82011-03-12 17:02:57 +00001409 if( !reserved && !pFile->pInode->bProcessLock ){
danielk197713adf8a2004-06-03 16:08:41 +00001410 struct flock lock;
1411 lock.l_whence = SEEK_SET;
drh2ac3ee92004-06-07 16:27:46 +00001412 lock.l_start = RESERVED_BYTE;
1413 lock.l_len = 1;
1414 lock.l_type = F_WRLCK;
danea83bc62011-04-01 11:56:32 +00001415 if( osFcntl(pFile->h, F_GETLK, &lock) ){
1416 rc = SQLITE_IOERR_CHECKRESERVEDLOCK;
drh4bf66fd2015-02-19 02:43:02 +00001417 storeLastErrno(pFile, errno);
aswift5b1a2562008-08-22 00:22:35 +00001418 } else if( lock.l_type!=F_UNLCK ){
1419 reserved = 1;
danielk197713adf8a2004-06-03 16:08:41 +00001420 }
1421 }
danielk197709480a92009-02-09 05:32:32 +00001422#endif
danielk197713adf8a2004-06-03 16:08:41 +00001423
drh6c7d5c52008-11-21 20:32:33 +00001424 unixLeaveMutex();
drh308c2a52010-05-14 11:30:18 +00001425 OSTRACE(("TEST WR-LOCK %d %d %d (unix)\n", pFile->h, rc, reserved));
danielk197713adf8a2004-06-03 16:08:41 +00001426
aswift5b1a2562008-08-22 00:22:35 +00001427 *pResOut = reserved;
1428 return rc;
danielk197713adf8a2004-06-03 16:08:41 +00001429}
1430
1431/*
drha7e61d82011-03-12 17:02:57 +00001432** Attempt to set a system-lock on the file pFile. The lock is
1433** described by pLock.
1434**
drh77197112011-03-15 19:08:48 +00001435** If the pFile was opened read/write from unix-excl, then the only lock
1436** ever obtained is an exclusive lock, and it is obtained exactly once
drha7e61d82011-03-12 17:02:57 +00001437** the first time any lock is attempted. All subsequent system locking
1438** operations become no-ops. Locking operations still happen internally,
1439** in order to coordinate access between separate database connections
1440** within this process, but all of that is handled in memory and the
1441** operating system does not participate.
drh77197112011-03-15 19:08:48 +00001442**
1443** This function is a pass-through to fcntl(F_SETLK) if pFile is using
1444** any VFS other than "unix-excl" or if pFile is opened on "unix-excl"
1445** and is read-only.
dan661d71a2011-03-30 19:08:03 +00001446**
1447** Zero is returned if the call completes successfully, or -1 if a call
1448** to fcntl() fails. In this case, errno is set appropriately (by fcntl()).
drha7e61d82011-03-12 17:02:57 +00001449*/
1450static int unixFileLock(unixFile *pFile, struct flock *pLock){
1451 int rc;
drh3cb93392011-03-12 18:10:44 +00001452 unixInodeInfo *pInode = pFile->pInode;
drha7e61d82011-03-12 17:02:57 +00001453 assert( unixMutexHeld() );
drh3cb93392011-03-12 18:10:44 +00001454 assert( pInode!=0 );
drh50358ad2015-12-02 01:04:33 +00001455 if( (pFile->ctrlFlags & (UNIXFILE_EXCL|UNIXFILE_RDONLY))==UNIXFILE_EXCL ){
drh3cb93392011-03-12 18:10:44 +00001456 if( pInode->bProcessLock==0 ){
drha7e61d82011-03-12 17:02:57 +00001457 struct flock lock;
drh3cb93392011-03-12 18:10:44 +00001458 assert( pInode->nLock==0 );
drha7e61d82011-03-12 17:02:57 +00001459 lock.l_whence = SEEK_SET;
1460 lock.l_start = SHARED_FIRST;
1461 lock.l_len = SHARED_SIZE;
1462 lock.l_type = F_WRLCK;
1463 rc = osFcntl(pFile->h, F_SETLK, &lock);
1464 if( rc<0 ) return rc;
drh3cb93392011-03-12 18:10:44 +00001465 pInode->bProcessLock = 1;
1466 pInode->nLock++;
drha7e61d82011-03-12 17:02:57 +00001467 }else{
1468 rc = 0;
1469 }
1470 }else{
1471 rc = osFcntl(pFile->h, F_SETLK, pLock);
1472 }
1473 return rc;
1474}
1475
1476/*
drh308c2a52010-05-14 11:30:18 +00001477** Lock the file with the lock specified by parameter eFileLock - one
danielk19779a1d0ab2004-06-01 14:09:28 +00001478** of the following:
1479**
drh2ac3ee92004-06-07 16:27:46 +00001480** (1) SHARED_LOCK
1481** (2) RESERVED_LOCK
1482** (3) PENDING_LOCK
1483** (4) EXCLUSIVE_LOCK
1484**
drhb3e04342004-06-08 00:47:47 +00001485** Sometimes when requesting one lock state, additional lock states
1486** are inserted in between. The locking might fail on one of the later
1487** transitions leaving the lock state different from what it started but
1488** still short of its goal. The following chart shows the allowed
1489** transitions and the inserted intermediate states:
1490**
1491** UNLOCKED -> SHARED
1492** SHARED -> RESERVED
1493** SHARED -> (PENDING) -> EXCLUSIVE
1494** RESERVED -> (PENDING) -> EXCLUSIVE
1495** PENDING -> EXCLUSIVE
drh2ac3ee92004-06-07 16:27:46 +00001496**
drha6abd042004-06-09 17:37:22 +00001497** This routine will only increase a lock. Use the sqlite3OsUnlock()
1498** routine to lower a locking level.
danielk19779a1d0ab2004-06-01 14:09:28 +00001499*/
drh308c2a52010-05-14 11:30:18 +00001500static int unixLock(sqlite3_file *id, int eFileLock){
danielk1977f42f25c2004-06-25 07:21:28 +00001501 /* The following describes the implementation of the various locks and
1502 ** lock transitions in terms of the POSIX advisory shared and exclusive
1503 ** lock primitives (called read-locks and write-locks below, to avoid
1504 ** confusion with SQLite lock names). The algorithms are complicated
drhf878e6e2016-04-07 13:45:20 +00001505 ** slightly in order to be compatible with Windows95 systems simultaneously
danielk1977f42f25c2004-06-25 07:21:28 +00001506 ** accessing the same database file, in case that is ever required.
1507 **
1508 ** Symbols defined in os.h indentify the 'pending byte' and the 'reserved
1509 ** byte', each single bytes at well known offsets, and the 'shared byte
1510 ** range', a range of 510 bytes at a well known offset.
1511 **
1512 ** To obtain a SHARED lock, a read-lock is obtained on the 'pending
drhf878e6e2016-04-07 13:45:20 +00001513 ** byte'. If this is successful, 'shared byte range' is read-locked
1514 ** and the lock on the 'pending byte' released. (Legacy note: When
1515 ** SQLite was first developed, Windows95 systems were still very common,
1516 ** and Widnows95 lacks a shared-lock capability. So on Windows95, a
1517 ** single randomly selected by from the 'shared byte range' is locked.
1518 ** Windows95 is now pretty much extinct, but this work-around for the
1519 ** lack of shared-locks on Windows95 lives on, for backwards
1520 ** compatibility.)
danielk1977f42f25c2004-06-25 07:21:28 +00001521 **
danielk197790ba3bd2004-06-25 08:32:25 +00001522 ** A process may only obtain a RESERVED lock after it has a SHARED lock.
1523 ** A RESERVED lock is implemented by grabbing a write-lock on the
1524 ** 'reserved byte'.
danielk1977f42f25c2004-06-25 07:21:28 +00001525 **
1526 ** A process may only obtain a PENDING lock after it has obtained a
danielk197790ba3bd2004-06-25 08:32:25 +00001527 ** SHARED lock. A PENDING lock is implemented by obtaining a write-lock
1528 ** on the 'pending byte'. This ensures that no new SHARED locks can be
1529 ** obtained, but existing SHARED locks are allowed to persist. A process
1530 ** does not have to obtain a RESERVED lock on the way to a PENDING lock.
1531 ** This property is used by the algorithm for rolling back a journal file
1532 ** after a crash.
danielk1977f42f25c2004-06-25 07:21:28 +00001533 **
danielk197790ba3bd2004-06-25 08:32:25 +00001534 ** An EXCLUSIVE lock, obtained after a PENDING lock is held, is
1535 ** implemented by obtaining a write-lock on the entire 'shared byte
1536 ** range'. Since all other locks require a read-lock on one of the bytes
1537 ** within this range, this ensures that no other locks are held on the
1538 ** database.
danielk1977f42f25c2004-06-25 07:21:28 +00001539 */
danielk19779a1d0ab2004-06-01 14:09:28 +00001540 int rc = SQLITE_OK;
drh054889e2005-11-30 03:20:31 +00001541 unixFile *pFile = (unixFile*)id;
drhb07028f2011-10-14 21:49:18 +00001542 unixInodeInfo *pInode;
danielk19779a1d0ab2004-06-01 14:09:28 +00001543 struct flock lock;
drh383d30f2010-02-26 13:07:37 +00001544 int tErrno = 0;
danielk19779a1d0ab2004-06-01 14:09:28 +00001545
drh054889e2005-11-30 03:20:31 +00001546 assert( pFile );
drh308c2a52010-05-14 11:30:18 +00001547 OSTRACE(("LOCK %d %s was %s(%s,%d) pid=%d (unix)\n", pFile->h,
1548 azFileLock(eFileLock), azFileLock(pFile->eFileLock),
drh91eb93c2015-03-03 19:56:20 +00001549 azFileLock(pFile->pInode->eFileLock), pFile->pInode->nShared,
drh5ac93652015-03-21 20:59:43 +00001550 osGetpid(0)));
danielk19779a1d0ab2004-06-01 14:09:28 +00001551
1552 /* If there is already a lock of this type or more restrictive on the
danielk1977ad94b582007-08-20 06:44:22 +00001553 ** unixFile, do nothing. Don't use the end_lock: exit path, as
drh6c7d5c52008-11-21 20:32:33 +00001554 ** unixEnterMutex() hasn't been called yet.
danielk19779a1d0ab2004-06-01 14:09:28 +00001555 */
drh308c2a52010-05-14 11:30:18 +00001556 if( pFile->eFileLock>=eFileLock ){
1557 OSTRACE(("LOCK %d %s ok (already held) (unix)\n", pFile->h,
1558 azFileLock(eFileLock)));
danielk19779a1d0ab2004-06-01 14:09:28 +00001559 return SQLITE_OK;
1560 }
1561
drh0c2694b2009-09-03 16:23:44 +00001562 /* Make sure the locking sequence is correct.
1563 ** (1) We never move from unlocked to anything higher than shared lock.
1564 ** (2) SQLite never explicitly requests a pendig lock.
1565 ** (3) A shared lock is always held when a reserve lock is requested.
drh2ac3ee92004-06-07 16:27:46 +00001566 */
drh308c2a52010-05-14 11:30:18 +00001567 assert( pFile->eFileLock!=NO_LOCK || eFileLock==SHARED_LOCK );
1568 assert( eFileLock!=PENDING_LOCK );
1569 assert( eFileLock!=RESERVED_LOCK || pFile->eFileLock==SHARED_LOCK );
drh2ac3ee92004-06-07 16:27:46 +00001570
drh8af6c222010-05-14 12:43:01 +00001571 /* This mutex is needed because pFile->pInode is shared across threads
drhb3e04342004-06-08 00:47:47 +00001572 */
drh6c7d5c52008-11-21 20:32:33 +00001573 unixEnterMutex();
drh8af6c222010-05-14 12:43:01 +00001574 pInode = pFile->pInode;
drh029b44b2006-01-15 00:13:15 +00001575
danielk1977ad94b582007-08-20 06:44:22 +00001576 /* If some thread using this PID has a lock via a different unixFile*
danielk19779a1d0ab2004-06-01 14:09:28 +00001577 ** handle that precludes the requested lock, return BUSY.
1578 */
drh8af6c222010-05-14 12:43:01 +00001579 if( (pFile->eFileLock!=pInode->eFileLock &&
1580 (pInode->eFileLock>=PENDING_LOCK || eFileLock>SHARED_LOCK))
danielk19779a1d0ab2004-06-01 14:09:28 +00001581 ){
1582 rc = SQLITE_BUSY;
1583 goto end_lock;
1584 }
1585
1586 /* If a SHARED lock is requested, and some thread using this PID already
1587 ** has a SHARED or RESERVED lock, then increment reference counts and
1588 ** return SQLITE_OK.
1589 */
drh308c2a52010-05-14 11:30:18 +00001590 if( eFileLock==SHARED_LOCK &&
drh8af6c222010-05-14 12:43:01 +00001591 (pInode->eFileLock==SHARED_LOCK || pInode->eFileLock==RESERVED_LOCK) ){
drh308c2a52010-05-14 11:30:18 +00001592 assert( eFileLock==SHARED_LOCK );
1593 assert( pFile->eFileLock==0 );
drh8af6c222010-05-14 12:43:01 +00001594 assert( pInode->nShared>0 );
drh308c2a52010-05-14 11:30:18 +00001595 pFile->eFileLock = SHARED_LOCK;
drh8af6c222010-05-14 12:43:01 +00001596 pInode->nShared++;
1597 pInode->nLock++;
danielk19779a1d0ab2004-06-01 14:09:28 +00001598 goto end_lock;
1599 }
1600
danielk19779a1d0ab2004-06-01 14:09:28 +00001601
drh3cde3bb2004-06-12 02:17:14 +00001602 /* A PENDING lock is needed before acquiring a SHARED lock and before
1603 ** acquiring an EXCLUSIVE lock. For the SHARED lock, the PENDING will
1604 ** be released.
danielk19779a1d0ab2004-06-01 14:09:28 +00001605 */
drh0c2694b2009-09-03 16:23:44 +00001606 lock.l_len = 1L;
1607 lock.l_whence = SEEK_SET;
drh308c2a52010-05-14 11:30:18 +00001608 if( eFileLock==SHARED_LOCK
1609 || (eFileLock==EXCLUSIVE_LOCK && pFile->eFileLock<PENDING_LOCK)
drh3cde3bb2004-06-12 02:17:14 +00001610 ){
drh308c2a52010-05-14 11:30:18 +00001611 lock.l_type = (eFileLock==SHARED_LOCK?F_RDLCK:F_WRLCK);
drh2ac3ee92004-06-07 16:27:46 +00001612 lock.l_start = PENDING_BYTE;
dan661d71a2011-03-30 19:08:03 +00001613 if( unixFileLock(pFile, &lock) ){
drh0c2694b2009-09-03 16:23:44 +00001614 tErrno = errno;
aswift5b1a2562008-08-22 00:22:35 +00001615 rc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_LOCK);
dan661d71a2011-03-30 19:08:03 +00001616 if( rc!=SQLITE_BUSY ){
drh4bf66fd2015-02-19 02:43:02 +00001617 storeLastErrno(pFile, tErrno);
aswift5b1a2562008-08-22 00:22:35 +00001618 }
danielk19779a1d0ab2004-06-01 14:09:28 +00001619 goto end_lock;
1620 }
drh3cde3bb2004-06-12 02:17:14 +00001621 }
1622
1623
1624 /* If control gets to this point, then actually go ahead and make
1625 ** operating system calls for the specified lock.
1626 */
drh308c2a52010-05-14 11:30:18 +00001627 if( eFileLock==SHARED_LOCK ){
drh8af6c222010-05-14 12:43:01 +00001628 assert( pInode->nShared==0 );
1629 assert( pInode->eFileLock==0 );
dan661d71a2011-03-30 19:08:03 +00001630 assert( rc==SQLITE_OK );
danielk19779a1d0ab2004-06-01 14:09:28 +00001631
drh2ac3ee92004-06-07 16:27:46 +00001632 /* Now get the read-lock */
drh7ed97b92010-01-20 13:07:21 +00001633 lock.l_start = SHARED_FIRST;
1634 lock.l_len = SHARED_SIZE;
dan661d71a2011-03-30 19:08:03 +00001635 if( unixFileLock(pFile, &lock) ){
drh7ed97b92010-01-20 13:07:21 +00001636 tErrno = errno;
dan661d71a2011-03-30 19:08:03 +00001637 rc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_LOCK);
drh7ed97b92010-01-20 13:07:21 +00001638 }
dan661d71a2011-03-30 19:08:03 +00001639
drh2ac3ee92004-06-07 16:27:46 +00001640 /* Drop the temporary PENDING lock */
1641 lock.l_start = PENDING_BYTE;
1642 lock.l_len = 1L;
danielk19779a1d0ab2004-06-01 14:09:28 +00001643 lock.l_type = F_UNLCK;
dan661d71a2011-03-30 19:08:03 +00001644 if( unixFileLock(pFile, &lock) && rc==SQLITE_OK ){
1645 /* This could happen with a network mount */
1646 tErrno = errno;
danea83bc62011-04-01 11:56:32 +00001647 rc = SQLITE_IOERR_UNLOCK;
drh2b4b5962005-06-15 17:47:55 +00001648 }
dan661d71a2011-03-30 19:08:03 +00001649
1650 if( rc ){
1651 if( rc!=SQLITE_BUSY ){
drh4bf66fd2015-02-19 02:43:02 +00001652 storeLastErrno(pFile, tErrno);
aswift5b1a2562008-08-22 00:22:35 +00001653 }
dan661d71a2011-03-30 19:08:03 +00001654 goto end_lock;
drhbbd42a62004-05-22 17:41:58 +00001655 }else{
drh308c2a52010-05-14 11:30:18 +00001656 pFile->eFileLock = SHARED_LOCK;
drh8af6c222010-05-14 12:43:01 +00001657 pInode->nLock++;
1658 pInode->nShared = 1;
drhbbd42a62004-05-22 17:41:58 +00001659 }
drh8af6c222010-05-14 12:43:01 +00001660 }else if( eFileLock==EXCLUSIVE_LOCK && pInode->nShared>1 ){
drh3cde3bb2004-06-12 02:17:14 +00001661 /* We are trying for an exclusive lock but another thread in this
1662 ** same process is still holding a shared lock. */
1663 rc = SQLITE_BUSY;
drhbbd42a62004-05-22 17:41:58 +00001664 }else{
drh3cde3bb2004-06-12 02:17:14 +00001665 /* The request was for a RESERVED or EXCLUSIVE lock. It is
danielk19779a1d0ab2004-06-01 14:09:28 +00001666 ** assumed that there is a SHARED or greater lock on the file
1667 ** already.
1668 */
drh308c2a52010-05-14 11:30:18 +00001669 assert( 0!=pFile->eFileLock );
danielk19779a1d0ab2004-06-01 14:09:28 +00001670 lock.l_type = F_WRLCK;
dan661d71a2011-03-30 19:08:03 +00001671
1672 assert( eFileLock==RESERVED_LOCK || eFileLock==EXCLUSIVE_LOCK );
1673 if( eFileLock==RESERVED_LOCK ){
1674 lock.l_start = RESERVED_BYTE;
1675 lock.l_len = 1L;
1676 }else{
1677 lock.l_start = SHARED_FIRST;
1678 lock.l_len = SHARED_SIZE;
danielk19779a1d0ab2004-06-01 14:09:28 +00001679 }
dan661d71a2011-03-30 19:08:03 +00001680
1681 if( unixFileLock(pFile, &lock) ){
drh7ed97b92010-01-20 13:07:21 +00001682 tErrno = errno;
aswift5b1a2562008-08-22 00:22:35 +00001683 rc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_LOCK);
dan661d71a2011-03-30 19:08:03 +00001684 if( rc!=SQLITE_BUSY ){
drh4bf66fd2015-02-19 02:43:02 +00001685 storeLastErrno(pFile, tErrno);
aswift5b1a2562008-08-22 00:22:35 +00001686 }
danielk19779a1d0ab2004-06-01 14:09:28 +00001687 }
drhbbd42a62004-05-22 17:41:58 +00001688 }
danielk19779a1d0ab2004-06-01 14:09:28 +00001689
drh8f941bc2009-01-14 23:03:40 +00001690
drhd3d8c042012-05-29 17:02:40 +00001691#ifdef SQLITE_DEBUG
drh8f941bc2009-01-14 23:03:40 +00001692 /* Set up the transaction-counter change checking flags when
1693 ** transitioning from a SHARED to a RESERVED lock. The change
1694 ** from SHARED to RESERVED marks the beginning of a normal
1695 ** write operation (not a hot journal rollback).
1696 */
1697 if( rc==SQLITE_OK
drh308c2a52010-05-14 11:30:18 +00001698 && pFile->eFileLock<=SHARED_LOCK
1699 && eFileLock==RESERVED_LOCK
drh8f941bc2009-01-14 23:03:40 +00001700 ){
1701 pFile->transCntrChng = 0;
1702 pFile->dbUpdate = 0;
1703 pFile->inNormalWrite = 1;
1704 }
1705#endif
1706
1707
danielk1977ecb2a962004-06-02 06:30:16 +00001708 if( rc==SQLITE_OK ){
drh308c2a52010-05-14 11:30:18 +00001709 pFile->eFileLock = eFileLock;
drh8af6c222010-05-14 12:43:01 +00001710 pInode->eFileLock = eFileLock;
drh308c2a52010-05-14 11:30:18 +00001711 }else if( eFileLock==EXCLUSIVE_LOCK ){
1712 pFile->eFileLock = PENDING_LOCK;
drh8af6c222010-05-14 12:43:01 +00001713 pInode->eFileLock = PENDING_LOCK;
danielk1977ecb2a962004-06-02 06:30:16 +00001714 }
danielk19779a1d0ab2004-06-01 14:09:28 +00001715
1716end_lock:
drh6c7d5c52008-11-21 20:32:33 +00001717 unixLeaveMutex();
drh308c2a52010-05-14 11:30:18 +00001718 OSTRACE(("LOCK %d %s %s (unix)\n", pFile->h, azFileLock(eFileLock),
1719 rc==SQLITE_OK ? "ok" : "failed"));
drhbbd42a62004-05-22 17:41:58 +00001720 return rc;
1721}
1722
1723/*
dan08da86a2009-08-21 17:18:03 +00001724** Add the file descriptor used by file handle pFile to the corresponding
dane946c392009-08-22 11:39:46 +00001725** pUnused list.
dan08da86a2009-08-21 17:18:03 +00001726*/
1727static void setPendingFd(unixFile *pFile){
drhd91c68f2010-05-14 14:52:25 +00001728 unixInodeInfo *pInode = pFile->pInode;
dane946c392009-08-22 11:39:46 +00001729 UnixUnusedFd *p = pFile->pUnused;
drh8af6c222010-05-14 12:43:01 +00001730 p->pNext = pInode->pUnused;
1731 pInode->pUnused = p;
dane946c392009-08-22 11:39:46 +00001732 pFile->h = -1;
1733 pFile->pUnused = 0;
dan08da86a2009-08-21 17:18:03 +00001734}
1735
1736/*
drh308c2a52010-05-14 11:30:18 +00001737** Lower the locking level on file descriptor pFile to eFileLock. eFileLock
drha6abd042004-06-09 17:37:22 +00001738** must be either NO_LOCK or SHARED_LOCK.
1739**
1740** If the locking level of the file descriptor is already at or below
1741** the requested locking level, this routine is a no-op.
drh7ed97b92010-01-20 13:07:21 +00001742**
1743** If handleNFSUnlock is true, then on downgrading an EXCLUSIVE_LOCK to SHARED
1744** the byte range is divided into 2 parts and the first part is unlocked then
1745** set to a read lock, then the other part is simply unlocked. This works
1746** around a bug in BSD NFS lockd (also seen on MacOSX 10.3+) that fails to
1747** remove the write lock on a region when a read lock is set.
drhbbd42a62004-05-22 17:41:58 +00001748*/
drha7e61d82011-03-12 17:02:57 +00001749static int posixUnlock(sqlite3_file *id, int eFileLock, int handleNFSUnlock){
drh7ed97b92010-01-20 13:07:21 +00001750 unixFile *pFile = (unixFile*)id;
drhd91c68f2010-05-14 14:52:25 +00001751 unixInodeInfo *pInode;
drh7ed97b92010-01-20 13:07:21 +00001752 struct flock lock;
1753 int rc = SQLITE_OK;
drha6abd042004-06-09 17:37:22 +00001754
drh054889e2005-11-30 03:20:31 +00001755 assert( pFile );
drh308c2a52010-05-14 11:30:18 +00001756 OSTRACE(("UNLOCK %d %d was %d(%d,%d) pid=%d (unix)\n", pFile->h, eFileLock,
drh8af6c222010-05-14 12:43:01 +00001757 pFile->eFileLock, pFile->pInode->eFileLock, pFile->pInode->nShared,
drh5ac93652015-03-21 20:59:43 +00001758 osGetpid(0)));
drha6abd042004-06-09 17:37:22 +00001759
drh308c2a52010-05-14 11:30:18 +00001760 assert( eFileLock<=SHARED_LOCK );
1761 if( pFile->eFileLock<=eFileLock ){
drha6abd042004-06-09 17:37:22 +00001762 return SQLITE_OK;
1763 }
drh6c7d5c52008-11-21 20:32:33 +00001764 unixEnterMutex();
drh8af6c222010-05-14 12:43:01 +00001765 pInode = pFile->pInode;
1766 assert( pInode->nShared!=0 );
drh308c2a52010-05-14 11:30:18 +00001767 if( pFile->eFileLock>SHARED_LOCK ){
drh8af6c222010-05-14 12:43:01 +00001768 assert( pInode->eFileLock==pFile->eFileLock );
drh8f941bc2009-01-14 23:03:40 +00001769
drhd3d8c042012-05-29 17:02:40 +00001770#ifdef SQLITE_DEBUG
drh8f941bc2009-01-14 23:03:40 +00001771 /* When reducing a lock such that other processes can start
1772 ** reading the database file again, make sure that the
1773 ** transaction counter was updated if any part of the database
1774 ** file changed. If the transaction counter is not updated,
1775 ** other connections to the same file might not realize that
1776 ** the file has changed and hence might not know to flush their
1777 ** cache. The use of a stale cache can lead to database corruption.
1778 */
drh8f941bc2009-01-14 23:03:40 +00001779 pFile->inNormalWrite = 0;
1780#endif
1781
drh7ed97b92010-01-20 13:07:21 +00001782 /* downgrading to a shared lock on NFS involves clearing the write lock
1783 ** before establishing the readlock - to avoid a race condition we downgrade
1784 ** the lock in 2 blocks, so that part of the range will be covered by a
1785 ** write lock until the rest is covered by a read lock:
1786 ** 1: [WWWWW]
1787 ** 2: [....W]
1788 ** 3: [RRRRW]
1789 ** 4: [RRRR.]
1790 */
drh308c2a52010-05-14 11:30:18 +00001791 if( eFileLock==SHARED_LOCK ){
drh30f776f2011-02-25 03:25:07 +00001792#if !defined(__APPLE__) || !SQLITE_ENABLE_LOCKING_STYLE
drh87e79ae2011-03-08 13:06:41 +00001793 (void)handleNFSUnlock;
drh30f776f2011-02-25 03:25:07 +00001794 assert( handleNFSUnlock==0 );
1795#endif
1796#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
drh7ed97b92010-01-20 13:07:21 +00001797 if( handleNFSUnlock ){
drha712b4b2015-02-19 16:12:04 +00001798 int tErrno; /* Error code from system call errors */
drh7ed97b92010-01-20 13:07:21 +00001799 off_t divSize = SHARED_SIZE - 1;
1800
1801 lock.l_type = F_UNLCK;
1802 lock.l_whence = SEEK_SET;
1803 lock.l_start = SHARED_FIRST;
1804 lock.l_len = divSize;
dan211fb082011-04-01 09:04:36 +00001805 if( unixFileLock(pFile, &lock)==(-1) ){
drhc05a9a82010-03-04 16:12:34 +00001806 tErrno = errno;
danea83bc62011-04-01 11:56:32 +00001807 rc = SQLITE_IOERR_UNLOCK;
drha8de1e12015-11-30 00:05:39 +00001808 storeLastErrno(pFile, tErrno);
drh7ed97b92010-01-20 13:07:21 +00001809 goto end_unlock;
aswift5b1a2562008-08-22 00:22:35 +00001810 }
drh7ed97b92010-01-20 13:07:21 +00001811 lock.l_type = F_RDLCK;
1812 lock.l_whence = SEEK_SET;
1813 lock.l_start = SHARED_FIRST;
1814 lock.l_len = divSize;
drha7e61d82011-03-12 17:02:57 +00001815 if( unixFileLock(pFile, &lock)==(-1) ){
drhc05a9a82010-03-04 16:12:34 +00001816 tErrno = errno;
drh7ed97b92010-01-20 13:07:21 +00001817 rc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_RDLOCK);
1818 if( IS_LOCK_ERROR(rc) ){
drh4bf66fd2015-02-19 02:43:02 +00001819 storeLastErrno(pFile, tErrno);
drh7ed97b92010-01-20 13:07:21 +00001820 }
1821 goto end_unlock;
1822 }
1823 lock.l_type = F_UNLCK;
1824 lock.l_whence = SEEK_SET;
1825 lock.l_start = SHARED_FIRST+divSize;
1826 lock.l_len = SHARED_SIZE-divSize;
drha7e61d82011-03-12 17:02:57 +00001827 if( unixFileLock(pFile, &lock)==(-1) ){
drhc05a9a82010-03-04 16:12:34 +00001828 tErrno = errno;
danea83bc62011-04-01 11:56:32 +00001829 rc = SQLITE_IOERR_UNLOCK;
drha8de1e12015-11-30 00:05:39 +00001830 storeLastErrno(pFile, tErrno);
drh7ed97b92010-01-20 13:07:21 +00001831 goto end_unlock;
1832 }
drh30f776f2011-02-25 03:25:07 +00001833 }else
1834#endif /* defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE */
1835 {
drh7ed97b92010-01-20 13:07:21 +00001836 lock.l_type = F_RDLCK;
1837 lock.l_whence = SEEK_SET;
1838 lock.l_start = SHARED_FIRST;
1839 lock.l_len = SHARED_SIZE;
dan661d71a2011-03-30 19:08:03 +00001840 if( unixFileLock(pFile, &lock) ){
danea83bc62011-04-01 11:56:32 +00001841 /* In theory, the call to unixFileLock() cannot fail because another
1842 ** process is holding an incompatible lock. If it does, this
1843 ** indicates that the other process is not following the locking
1844 ** protocol. If this happens, return SQLITE_IOERR_RDLOCK. Returning
1845 ** SQLITE_BUSY would confuse the upper layer (in practice it causes
1846 ** an assert to fail). */
1847 rc = SQLITE_IOERR_RDLOCK;
drh4bf66fd2015-02-19 02:43:02 +00001848 storeLastErrno(pFile, errno);
drh7ed97b92010-01-20 13:07:21 +00001849 goto end_unlock;
1850 }
drh9c105bb2004-10-02 20:38:28 +00001851 }
1852 }
drhbbd42a62004-05-22 17:41:58 +00001853 lock.l_type = F_UNLCK;
1854 lock.l_whence = SEEK_SET;
drha6abd042004-06-09 17:37:22 +00001855 lock.l_start = PENDING_BYTE;
1856 lock.l_len = 2L; assert( PENDING_BYTE+1==RESERVED_BYTE );
dan661d71a2011-03-30 19:08:03 +00001857 if( unixFileLock(pFile, &lock)==0 ){
drh8af6c222010-05-14 12:43:01 +00001858 pInode->eFileLock = SHARED_LOCK;
drh2b4b5962005-06-15 17:47:55 +00001859 }else{
danea83bc62011-04-01 11:56:32 +00001860 rc = SQLITE_IOERR_UNLOCK;
drh4bf66fd2015-02-19 02:43:02 +00001861 storeLastErrno(pFile, errno);
drhcd731cf2009-03-28 23:23:02 +00001862 goto end_unlock;
drh2b4b5962005-06-15 17:47:55 +00001863 }
drhbbd42a62004-05-22 17:41:58 +00001864 }
drh308c2a52010-05-14 11:30:18 +00001865 if( eFileLock==NO_LOCK ){
drha6abd042004-06-09 17:37:22 +00001866 /* Decrement the shared lock counter. Release the lock using an
1867 ** OS call only when all threads in this same process have released
1868 ** the lock.
1869 */
drh8af6c222010-05-14 12:43:01 +00001870 pInode->nShared--;
1871 if( pInode->nShared==0 ){
drha6abd042004-06-09 17:37:22 +00001872 lock.l_type = F_UNLCK;
1873 lock.l_whence = SEEK_SET;
1874 lock.l_start = lock.l_len = 0L;
dan661d71a2011-03-30 19:08:03 +00001875 if( unixFileLock(pFile, &lock)==0 ){
drh8af6c222010-05-14 12:43:01 +00001876 pInode->eFileLock = NO_LOCK;
drh2b4b5962005-06-15 17:47:55 +00001877 }else{
danea83bc62011-04-01 11:56:32 +00001878 rc = SQLITE_IOERR_UNLOCK;
drh4bf66fd2015-02-19 02:43:02 +00001879 storeLastErrno(pFile, errno);
drh8af6c222010-05-14 12:43:01 +00001880 pInode->eFileLock = NO_LOCK;
drh308c2a52010-05-14 11:30:18 +00001881 pFile->eFileLock = NO_LOCK;
drh2b4b5962005-06-15 17:47:55 +00001882 }
drha6abd042004-06-09 17:37:22 +00001883 }
1884
drhbbd42a62004-05-22 17:41:58 +00001885 /* Decrement the count of locks against this same file. When the
1886 ** count reaches zero, close any other file descriptors whose close
1887 ** was deferred because of outstanding locks.
1888 */
drh8af6c222010-05-14 12:43:01 +00001889 pInode->nLock--;
1890 assert( pInode->nLock>=0 );
1891 if( pInode->nLock==0 ){
drh0e9365c2011-03-02 02:08:13 +00001892 closePendingFds(pFile);
drhbbd42a62004-05-22 17:41:58 +00001893 }
1894 }
drhf2f105d2012-08-20 15:53:54 +00001895
aswift5b1a2562008-08-22 00:22:35 +00001896end_unlock:
drh6c7d5c52008-11-21 20:32:33 +00001897 unixLeaveMutex();
drh308c2a52010-05-14 11:30:18 +00001898 if( rc==SQLITE_OK ) pFile->eFileLock = eFileLock;
drh9c105bb2004-10-02 20:38:28 +00001899 return rc;
drhbbd42a62004-05-22 17:41:58 +00001900}
1901
1902/*
drh308c2a52010-05-14 11:30:18 +00001903** Lower the locking level on file descriptor pFile to eFileLock. eFileLock
drh7ed97b92010-01-20 13:07:21 +00001904** must be either NO_LOCK or SHARED_LOCK.
1905**
1906** If the locking level of the file descriptor is already at or below
1907** the requested locking level, this routine is a no-op.
1908*/
drh308c2a52010-05-14 11:30:18 +00001909static int unixUnlock(sqlite3_file *id, int eFileLock){
danf52a4692013-10-31 18:49:58 +00001910#if SQLITE_MAX_MMAP_SIZE>0
dana1afc742013-03-25 13:50:49 +00001911 assert( eFileLock==SHARED_LOCK || ((unixFile *)id)->nFetchOut==0 );
danf52a4692013-10-31 18:49:58 +00001912#endif
drha7e61d82011-03-12 17:02:57 +00001913 return posixUnlock(id, eFileLock, 0);
drh7ed97b92010-01-20 13:07:21 +00001914}
1915
mistachkine98844f2013-08-24 00:59:24 +00001916#if SQLITE_MAX_MMAP_SIZE>0
danf23da962013-03-23 21:00:41 +00001917static int unixMapfile(unixFile *pFd, i64 nByte);
1918static void unixUnmapfile(unixFile *pFd);
mistachkine98844f2013-08-24 00:59:24 +00001919#endif
danf23da962013-03-23 21:00:41 +00001920
drh7ed97b92010-01-20 13:07:21 +00001921/*
danielk1977e339d652008-06-28 11:23:00 +00001922** This function performs the parts of the "close file" operation
1923** common to all locking schemes. It closes the directory and file
1924** handles, if they are valid, and sets all fields of the unixFile
1925** structure to 0.
drh9b35ea62008-11-29 02:20:26 +00001926**
1927** It is *not* necessary to hold the mutex when this routine is called,
1928** even on VxWorks. A mutex will be acquired on VxWorks by the
1929** vxworksReleaseFileId() routine.
danielk1977e339d652008-06-28 11:23:00 +00001930*/
1931static int closeUnixFile(sqlite3_file *id){
1932 unixFile *pFile = (unixFile*)id;
mistachkine98844f2013-08-24 00:59:24 +00001933#if SQLITE_MAX_MMAP_SIZE>0
danf23da962013-03-23 21:00:41 +00001934 unixUnmapfile(pFile);
mistachkine98844f2013-08-24 00:59:24 +00001935#endif
dan661d71a2011-03-30 19:08:03 +00001936 if( pFile->h>=0 ){
1937 robust_close(pFile, pFile->h, __LINE__);
1938 pFile->h = -1;
1939 }
1940#if OS_VXWORKS
1941 if( pFile->pId ){
drhc02a43a2012-01-10 23:18:38 +00001942 if( pFile->ctrlFlags & UNIXFILE_DELETE ){
drh036ac7f2011-08-08 23:18:05 +00001943 osUnlink(pFile->pId->zCanonicalName);
dan661d71a2011-03-30 19:08:03 +00001944 }
1945 vxworksReleaseFileId(pFile->pId);
1946 pFile->pId = 0;
1947 }
1948#endif
drh0bdbc902014-06-16 18:35:06 +00001949#ifdef SQLITE_UNLINK_AFTER_CLOSE
1950 if( pFile->ctrlFlags & UNIXFILE_DELETE ){
1951 osUnlink(pFile->zPath);
1952 sqlite3_free(*(char**)&pFile->zPath);
1953 pFile->zPath = 0;
1954 }
1955#endif
dan661d71a2011-03-30 19:08:03 +00001956 OSTRACE(("CLOSE %-3d\n", pFile->h));
1957 OpenCounter(-1);
1958 sqlite3_free(pFile->pUnused);
1959 memset(pFile, 0, sizeof(unixFile));
danielk1977e339d652008-06-28 11:23:00 +00001960 return SQLITE_OK;
1961}
1962
1963/*
danielk1977e3026632004-06-22 11:29:02 +00001964** Close a file.
1965*/
danielk197762079062007-08-15 17:08:46 +00001966static int unixClose(sqlite3_file *id){
aswiftaebf4132008-11-21 00:10:35 +00001967 int rc = SQLITE_OK;
dan661d71a2011-03-30 19:08:03 +00001968 unixFile *pFile = (unixFile *)id;
drhfbc7e882013-04-11 01:16:15 +00001969 verifyDbFile(pFile);
dan661d71a2011-03-30 19:08:03 +00001970 unixUnlock(id, NO_LOCK);
1971 unixEnterMutex();
1972
1973 /* unixFile.pInode is always valid here. Otherwise, a different close
1974 ** routine (e.g. nolockClose()) would be called instead.
1975 */
1976 assert( pFile->pInode->nLock>0 || pFile->pInode->bProcessLock==0 );
1977 if( ALWAYS(pFile->pInode) && pFile->pInode->nLock ){
1978 /* If there are outstanding locks, do not actually close the file just
1979 ** yet because that would clear those locks. Instead, add the file
1980 ** descriptor to pInode->pUnused list. It will be automatically closed
1981 ** when the last lock is cleared.
1982 */
1983 setPendingFd(pFile);
danielk1977e3026632004-06-22 11:29:02 +00001984 }
dan661d71a2011-03-30 19:08:03 +00001985 releaseInodeInfo(pFile);
1986 rc = closeUnixFile(id);
1987 unixLeaveMutex();
aswiftaebf4132008-11-21 00:10:35 +00001988 return rc;
danielk1977e3026632004-06-22 11:29:02 +00001989}
1990
drh734c9862008-11-28 15:37:20 +00001991/************** End of the posix advisory lock implementation *****************
1992******************************************************************************/
drhbfe66312006-10-03 17:40:40 +00001993
drh734c9862008-11-28 15:37:20 +00001994/******************************************************************************
1995****************************** No-op Locking **********************************
1996**
1997** Of the various locking implementations available, this is by far the
1998** simplest: locking is ignored. No attempt is made to lock the database
1999** file for reading or writing.
2000**
2001** This locking mode is appropriate for use on read-only databases
2002** (ex: databases that are burned into CD-ROM, for example.) It can
2003** also be used if the application employs some external mechanism to
2004** prevent simultaneous access of the same database by two or more
2005** database connections. But there is a serious risk of database
2006** corruption if this locking mode is used in situations where multiple
2007** database connections are accessing the same database file at the same
2008** time and one or more of those connections are writing.
2009*/
drhbfe66312006-10-03 17:40:40 +00002010
drh734c9862008-11-28 15:37:20 +00002011static int nolockCheckReservedLock(sqlite3_file *NotUsed, int *pResOut){
2012 UNUSED_PARAMETER(NotUsed);
2013 *pResOut = 0;
2014 return SQLITE_OK;
2015}
drh734c9862008-11-28 15:37:20 +00002016static int nolockLock(sqlite3_file *NotUsed, int NotUsed2){
2017 UNUSED_PARAMETER2(NotUsed, NotUsed2);
2018 return SQLITE_OK;
2019}
drh734c9862008-11-28 15:37:20 +00002020static int nolockUnlock(sqlite3_file *NotUsed, int NotUsed2){
2021 UNUSED_PARAMETER2(NotUsed, NotUsed2);
2022 return SQLITE_OK;
2023}
2024
2025/*
drh9b35ea62008-11-29 02:20:26 +00002026** Close the file.
drh734c9862008-11-28 15:37:20 +00002027*/
2028static int nolockClose(sqlite3_file *id) {
drh9b35ea62008-11-29 02:20:26 +00002029 return closeUnixFile(id);
drh734c9862008-11-28 15:37:20 +00002030}
2031
2032/******************* End of the no-op lock implementation *********************
2033******************************************************************************/
2034
2035/******************************************************************************
2036************************* Begin dot-file Locking ******************************
2037**
mistachkin48864df2013-03-21 21:20:32 +00002038** The dotfile locking implementation uses the existence of separate lock
drh9ef6bc42011-11-04 02:24:02 +00002039** files (really a directory) to control access to the database. This works
2040** on just about every filesystem imaginable. But there are serious downsides:
drh734c9862008-11-28 15:37:20 +00002041**
2042** (1) There is zero concurrency. A single reader blocks all other
2043** connections from reading or writing the database.
2044**
2045** (2) An application crash or power loss can leave stale lock files
2046** sitting around that need to be cleared manually.
2047**
2048** Nevertheless, a dotlock is an appropriate locking mode for use if no
2049** other locking strategy is available.
drh7708e972008-11-29 00:56:52 +00002050**
drh9ef6bc42011-11-04 02:24:02 +00002051** Dotfile locking works by creating a subdirectory in the same directory as
2052** the database and with the same name but with a ".lock" extension added.
mistachkin48864df2013-03-21 21:20:32 +00002053** The existence of a lock directory implies an EXCLUSIVE lock. All other
drh9ef6bc42011-11-04 02:24:02 +00002054** lock types (SHARED, RESERVED, PENDING) are mapped into EXCLUSIVE.
drh734c9862008-11-28 15:37:20 +00002055*/
2056
2057/*
2058** The file suffix added to the data base filename in order to create the
drh9ef6bc42011-11-04 02:24:02 +00002059** lock directory.
drh734c9862008-11-28 15:37:20 +00002060*/
2061#define DOTLOCK_SUFFIX ".lock"
2062
drh7708e972008-11-29 00:56:52 +00002063/*
2064** This routine checks if there is a RESERVED lock held on the specified
2065** file by this or any other process. If such a lock is held, set *pResOut
2066** to a non-zero value otherwise *pResOut is set to zero. The return value
2067** is set to SQLITE_OK unless an I/O error occurs during lock checking.
2068**
2069** In dotfile locking, either a lock exists or it does not. So in this
2070** variation of CheckReservedLock(), *pResOut is set to true if any lock
2071** is held on the file and false if the file is unlocked.
2072*/
drh734c9862008-11-28 15:37:20 +00002073static int dotlockCheckReservedLock(sqlite3_file *id, int *pResOut) {
2074 int rc = SQLITE_OK;
2075 int reserved = 0;
2076 unixFile *pFile = (unixFile*)id;
2077
2078 SimulateIOError( return SQLITE_IOERR_CHECKRESERVEDLOCK; );
2079
2080 assert( pFile );
drha8de1e12015-11-30 00:05:39 +00002081 reserved = osAccess((const char*)pFile->lockingContext, 0)==0;
drh308c2a52010-05-14 11:30:18 +00002082 OSTRACE(("TEST WR-LOCK %d %d %d (dotlock)\n", pFile->h, rc, reserved));
drh734c9862008-11-28 15:37:20 +00002083 *pResOut = reserved;
2084 return rc;
2085}
2086
drh7708e972008-11-29 00:56:52 +00002087/*
drh308c2a52010-05-14 11:30:18 +00002088** Lock the file with the lock specified by parameter eFileLock - one
drh7708e972008-11-29 00:56:52 +00002089** of the following:
2090**
2091** (1) SHARED_LOCK
2092** (2) RESERVED_LOCK
2093** (3) PENDING_LOCK
2094** (4) EXCLUSIVE_LOCK
2095**
2096** Sometimes when requesting one lock state, additional lock states
2097** are inserted in between. The locking might fail on one of the later
2098** transitions leaving the lock state different from what it started but
2099** still short of its goal. The following chart shows the allowed
2100** transitions and the inserted intermediate states:
2101**
2102** UNLOCKED -> SHARED
2103** SHARED -> RESERVED
2104** SHARED -> (PENDING) -> EXCLUSIVE
2105** RESERVED -> (PENDING) -> EXCLUSIVE
2106** PENDING -> EXCLUSIVE
2107**
2108** This routine will only increase a lock. Use the sqlite3OsUnlock()
2109** routine to lower a locking level.
2110**
2111** With dotfile locking, we really only support state (4): EXCLUSIVE.
2112** But we track the other locking levels internally.
2113*/
drh308c2a52010-05-14 11:30:18 +00002114static int dotlockLock(sqlite3_file *id, int eFileLock) {
drh734c9862008-11-28 15:37:20 +00002115 unixFile *pFile = (unixFile*)id;
drh734c9862008-11-28 15:37:20 +00002116 char *zLockFile = (char *)pFile->lockingContext;
drh7708e972008-11-29 00:56:52 +00002117 int rc = SQLITE_OK;
drh734c9862008-11-28 15:37:20 +00002118
drh7708e972008-11-29 00:56:52 +00002119
2120 /* If we have any lock, then the lock file already exists. All we have
2121 ** to do is adjust our internal record of the lock level.
2122 */
drh308c2a52010-05-14 11:30:18 +00002123 if( pFile->eFileLock > NO_LOCK ){
2124 pFile->eFileLock = eFileLock;
drh734c9862008-11-28 15:37:20 +00002125 /* Always update the timestamp on the old file */
drhdbe4b882011-06-20 18:00:17 +00002126#ifdef HAVE_UTIME
2127 utime(zLockFile, NULL);
2128#else
drh734c9862008-11-28 15:37:20 +00002129 utimes(zLockFile, NULL);
2130#endif
drh7708e972008-11-29 00:56:52 +00002131 return SQLITE_OK;
drh734c9862008-11-28 15:37:20 +00002132 }
2133
2134 /* grab an exclusive lock */
drh9ef6bc42011-11-04 02:24:02 +00002135 rc = osMkdir(zLockFile, 0777);
2136 if( rc<0 ){
2137 /* failed to open/create the lock directory */
drh734c9862008-11-28 15:37:20 +00002138 int tErrno = errno;
2139 if( EEXIST == tErrno ){
2140 rc = SQLITE_BUSY;
2141 } else {
2142 rc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_LOCK);
drha8de1e12015-11-30 00:05:39 +00002143 if( rc!=SQLITE_BUSY ){
drh4bf66fd2015-02-19 02:43:02 +00002144 storeLastErrno(pFile, tErrno);
drh734c9862008-11-28 15:37:20 +00002145 }
2146 }
drh7708e972008-11-29 00:56:52 +00002147 return rc;
drh734c9862008-11-28 15:37:20 +00002148 }
drh734c9862008-11-28 15:37:20 +00002149
2150 /* got it, set the type and return ok */
drh308c2a52010-05-14 11:30:18 +00002151 pFile->eFileLock = eFileLock;
drh734c9862008-11-28 15:37:20 +00002152 return rc;
2153}
2154
drh7708e972008-11-29 00:56:52 +00002155/*
drh308c2a52010-05-14 11:30:18 +00002156** Lower the locking level on file descriptor pFile to eFileLock. eFileLock
drh7708e972008-11-29 00:56:52 +00002157** must be either NO_LOCK or SHARED_LOCK.
2158**
2159** If the locking level of the file descriptor is already at or below
2160** the requested locking level, this routine is a no-op.
2161**
2162** When the locking level reaches NO_LOCK, delete the lock file.
2163*/
drh308c2a52010-05-14 11:30:18 +00002164static int dotlockUnlock(sqlite3_file *id, int eFileLock) {
drh734c9862008-11-28 15:37:20 +00002165 unixFile *pFile = (unixFile*)id;
2166 char *zLockFile = (char *)pFile->lockingContext;
drh9ef6bc42011-11-04 02:24:02 +00002167 int rc;
drh734c9862008-11-28 15:37:20 +00002168
2169 assert( pFile );
drh308c2a52010-05-14 11:30:18 +00002170 OSTRACE(("UNLOCK %d %d was %d pid=%d (dotlock)\n", pFile->h, eFileLock,
drh5ac93652015-03-21 20:59:43 +00002171 pFile->eFileLock, osGetpid(0)));
drh308c2a52010-05-14 11:30:18 +00002172 assert( eFileLock<=SHARED_LOCK );
drh734c9862008-11-28 15:37:20 +00002173
2174 /* no-op if possible */
drh308c2a52010-05-14 11:30:18 +00002175 if( pFile->eFileLock==eFileLock ){
drh734c9862008-11-28 15:37:20 +00002176 return SQLITE_OK;
2177 }
drh7708e972008-11-29 00:56:52 +00002178
2179 /* To downgrade to shared, simply update our internal notion of the
2180 ** lock state. No need to mess with the file on disk.
2181 */
drh308c2a52010-05-14 11:30:18 +00002182 if( eFileLock==SHARED_LOCK ){
2183 pFile->eFileLock = SHARED_LOCK;
drh734c9862008-11-28 15:37:20 +00002184 return SQLITE_OK;
2185 }
2186
drh7708e972008-11-29 00:56:52 +00002187 /* To fully unlock the database, delete the lock file */
drh308c2a52010-05-14 11:30:18 +00002188 assert( eFileLock==NO_LOCK );
drh9ef6bc42011-11-04 02:24:02 +00002189 rc = osRmdir(zLockFile);
drh9ef6bc42011-11-04 02:24:02 +00002190 if( rc<0 ){
drh0d588bb2009-06-17 13:09:38 +00002191 int tErrno = errno;
drha8de1e12015-11-30 00:05:39 +00002192 if( tErrno==ENOENT ){
2193 rc = SQLITE_OK;
2194 }else{
danea83bc62011-04-01 11:56:32 +00002195 rc = SQLITE_IOERR_UNLOCK;
drh4bf66fd2015-02-19 02:43:02 +00002196 storeLastErrno(pFile, tErrno);
drh734c9862008-11-28 15:37:20 +00002197 }
2198 return rc;
2199 }
drh308c2a52010-05-14 11:30:18 +00002200 pFile->eFileLock = NO_LOCK;
drh734c9862008-11-28 15:37:20 +00002201 return SQLITE_OK;
2202}
2203
2204/*
drh9b35ea62008-11-29 02:20:26 +00002205** Close a file. Make sure the lock has been released before closing.
drh734c9862008-11-28 15:37:20 +00002206*/
2207static int dotlockClose(sqlite3_file *id) {
drha8de1e12015-11-30 00:05:39 +00002208 unixFile *pFile = (unixFile*)id;
2209 assert( id!=0 );
2210 dotlockUnlock(id, NO_LOCK);
2211 sqlite3_free(pFile->lockingContext);
2212 return closeUnixFile(id);
drh734c9862008-11-28 15:37:20 +00002213}
2214/****************** End of the dot-file lock implementation *******************
2215******************************************************************************/
2216
2217/******************************************************************************
2218************************** Begin flock Locking ********************************
2219**
2220** Use the flock() system call to do file locking.
2221**
drh6b9d6dd2008-12-03 19:34:47 +00002222** flock() locking is like dot-file locking in that the various
2223** fine-grain locking levels supported by SQLite are collapsed into
2224** a single exclusive lock. In other words, SHARED, RESERVED, and
2225** PENDING locks are the same thing as an EXCLUSIVE lock. SQLite
2226** still works when you do this, but concurrency is reduced since
2227** only a single process can be reading the database at a time.
2228**
drhe89b2912015-03-03 20:42:01 +00002229** Omit this section if SQLITE_ENABLE_LOCKING_STYLE is turned off
drh734c9862008-11-28 15:37:20 +00002230*/
drhe89b2912015-03-03 20:42:01 +00002231#if SQLITE_ENABLE_LOCKING_STYLE
drh734c9862008-11-28 15:37:20 +00002232
drh6b9d6dd2008-12-03 19:34:47 +00002233/*
drhff812312011-02-23 13:33:46 +00002234** Retry flock() calls that fail with EINTR
2235*/
2236#ifdef EINTR
2237static int robust_flock(int fd, int op){
2238 int rc;
2239 do{ rc = flock(fd,op); }while( rc<0 && errno==EINTR );
2240 return rc;
2241}
2242#else
drh5c819272011-02-23 14:00:12 +00002243# define robust_flock(a,b) flock(a,b)
drhff812312011-02-23 13:33:46 +00002244#endif
2245
2246
2247/*
drh6b9d6dd2008-12-03 19:34:47 +00002248** This routine checks if there is a RESERVED lock held on the specified
2249** file by this or any other process. If such a lock is held, set *pResOut
2250** to a non-zero value otherwise *pResOut is set to zero. The return value
2251** is set to SQLITE_OK unless an I/O error occurs during lock checking.
2252*/
drh734c9862008-11-28 15:37:20 +00002253static int flockCheckReservedLock(sqlite3_file *id, int *pResOut){
2254 int rc = SQLITE_OK;
2255 int reserved = 0;
2256 unixFile *pFile = (unixFile*)id;
2257
2258 SimulateIOError( return SQLITE_IOERR_CHECKRESERVEDLOCK; );
2259
2260 assert( pFile );
2261
2262 /* Check if a thread in this process holds such a lock */
drh308c2a52010-05-14 11:30:18 +00002263 if( pFile->eFileLock>SHARED_LOCK ){
drh734c9862008-11-28 15:37:20 +00002264 reserved = 1;
2265 }
2266
2267 /* Otherwise see if some other process holds it. */
2268 if( !reserved ){
2269 /* attempt to get the lock */
drhff812312011-02-23 13:33:46 +00002270 int lrc = robust_flock(pFile->h, LOCK_EX | LOCK_NB);
drh734c9862008-11-28 15:37:20 +00002271 if( !lrc ){
2272 /* got the lock, unlock it */
drhff812312011-02-23 13:33:46 +00002273 lrc = robust_flock(pFile->h, LOCK_UN);
drh734c9862008-11-28 15:37:20 +00002274 if ( lrc ) {
2275 int tErrno = errno;
2276 /* unlock failed with an error */
danea83bc62011-04-01 11:56:32 +00002277 lrc = SQLITE_IOERR_UNLOCK;
drha8de1e12015-11-30 00:05:39 +00002278 storeLastErrno(pFile, tErrno);
2279 rc = lrc;
drh734c9862008-11-28 15:37:20 +00002280 }
2281 } else {
2282 int tErrno = errno;
2283 reserved = 1;
2284 /* someone else might have it reserved */
2285 lrc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_LOCK);
2286 if( IS_LOCK_ERROR(lrc) ){
drh4bf66fd2015-02-19 02:43:02 +00002287 storeLastErrno(pFile, tErrno);
drh734c9862008-11-28 15:37:20 +00002288 rc = lrc;
2289 }
2290 }
2291 }
drh308c2a52010-05-14 11:30:18 +00002292 OSTRACE(("TEST WR-LOCK %d %d %d (flock)\n", pFile->h, rc, reserved));
drh734c9862008-11-28 15:37:20 +00002293
2294#ifdef SQLITE_IGNORE_FLOCK_LOCK_ERRORS
2295 if( (rc & SQLITE_IOERR) == SQLITE_IOERR ){
2296 rc = SQLITE_OK;
2297 reserved=1;
2298 }
2299#endif /* SQLITE_IGNORE_FLOCK_LOCK_ERRORS */
2300 *pResOut = reserved;
2301 return rc;
2302}
2303
drh6b9d6dd2008-12-03 19:34:47 +00002304/*
drh308c2a52010-05-14 11:30:18 +00002305** Lock the file with the lock specified by parameter eFileLock - one
drh6b9d6dd2008-12-03 19:34:47 +00002306** of the following:
2307**
2308** (1) SHARED_LOCK
2309** (2) RESERVED_LOCK
2310** (3) PENDING_LOCK
2311** (4) EXCLUSIVE_LOCK
2312**
2313** Sometimes when requesting one lock state, additional lock states
2314** are inserted in between. The locking might fail on one of the later
2315** transitions leaving the lock state different from what it started but
2316** still short of its goal. The following chart shows the allowed
2317** transitions and the inserted intermediate states:
2318**
2319** UNLOCKED -> SHARED
2320** SHARED -> RESERVED
2321** SHARED -> (PENDING) -> EXCLUSIVE
2322** RESERVED -> (PENDING) -> EXCLUSIVE
2323** PENDING -> EXCLUSIVE
2324**
2325** flock() only really support EXCLUSIVE locks. We track intermediate
2326** lock states in the sqlite3_file structure, but all locks SHARED or
2327** above are really EXCLUSIVE locks and exclude all other processes from
2328** access the file.
2329**
2330** This routine will only increase a lock. Use the sqlite3OsUnlock()
2331** routine to lower a locking level.
2332*/
drh308c2a52010-05-14 11:30:18 +00002333static int flockLock(sqlite3_file *id, int eFileLock) {
drh734c9862008-11-28 15:37:20 +00002334 int rc = SQLITE_OK;
drh734c9862008-11-28 15:37:20 +00002335 unixFile *pFile = (unixFile*)id;
2336
2337 assert( pFile );
2338
2339 /* if we already have a lock, it is exclusive.
2340 ** Just adjust level and punt on outta here. */
drh308c2a52010-05-14 11:30:18 +00002341 if (pFile->eFileLock > NO_LOCK) {
2342 pFile->eFileLock = eFileLock;
drh734c9862008-11-28 15:37:20 +00002343 return SQLITE_OK;
2344 }
2345
2346 /* grab an exclusive lock */
2347
drhff812312011-02-23 13:33:46 +00002348 if (robust_flock(pFile->h, LOCK_EX | LOCK_NB)) {
drh734c9862008-11-28 15:37:20 +00002349 int tErrno = errno;
2350 /* didn't get, must be busy */
2351 rc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_LOCK);
2352 if( IS_LOCK_ERROR(rc) ){
drh4bf66fd2015-02-19 02:43:02 +00002353 storeLastErrno(pFile, tErrno);
drh734c9862008-11-28 15:37:20 +00002354 }
2355 } else {
2356 /* got it, set the type and return ok */
drh308c2a52010-05-14 11:30:18 +00002357 pFile->eFileLock = eFileLock;
drh734c9862008-11-28 15:37:20 +00002358 }
drh308c2a52010-05-14 11:30:18 +00002359 OSTRACE(("LOCK %d %s %s (flock)\n", pFile->h, azFileLock(eFileLock),
2360 rc==SQLITE_OK ? "ok" : "failed"));
drh734c9862008-11-28 15:37:20 +00002361#ifdef SQLITE_IGNORE_FLOCK_LOCK_ERRORS
2362 if( (rc & SQLITE_IOERR) == SQLITE_IOERR ){
2363 rc = SQLITE_BUSY;
2364 }
2365#endif /* SQLITE_IGNORE_FLOCK_LOCK_ERRORS */
2366 return rc;
2367}
2368
drh6b9d6dd2008-12-03 19:34:47 +00002369
2370/*
drh308c2a52010-05-14 11:30:18 +00002371** Lower the locking level on file descriptor pFile to eFileLock. eFileLock
drh6b9d6dd2008-12-03 19:34:47 +00002372** must be either NO_LOCK or SHARED_LOCK.
2373**
2374** If the locking level of the file descriptor is already at or below
2375** the requested locking level, this routine is a no-op.
2376*/
drh308c2a52010-05-14 11:30:18 +00002377static int flockUnlock(sqlite3_file *id, int eFileLock) {
drh734c9862008-11-28 15:37:20 +00002378 unixFile *pFile = (unixFile*)id;
2379
2380 assert( pFile );
drh308c2a52010-05-14 11:30:18 +00002381 OSTRACE(("UNLOCK %d %d was %d pid=%d (flock)\n", pFile->h, eFileLock,
drh5ac93652015-03-21 20:59:43 +00002382 pFile->eFileLock, osGetpid(0)));
drh308c2a52010-05-14 11:30:18 +00002383 assert( eFileLock<=SHARED_LOCK );
drh734c9862008-11-28 15:37:20 +00002384
2385 /* no-op if possible */
drh308c2a52010-05-14 11:30:18 +00002386 if( pFile->eFileLock==eFileLock ){
drh734c9862008-11-28 15:37:20 +00002387 return SQLITE_OK;
2388 }
2389
2390 /* shared can just be set because we always have an exclusive */
drh308c2a52010-05-14 11:30:18 +00002391 if (eFileLock==SHARED_LOCK) {
2392 pFile->eFileLock = eFileLock;
drh734c9862008-11-28 15:37:20 +00002393 return SQLITE_OK;
2394 }
2395
2396 /* no, really, unlock. */
danea83bc62011-04-01 11:56:32 +00002397 if( robust_flock(pFile->h, LOCK_UN) ){
drh734c9862008-11-28 15:37:20 +00002398#ifdef SQLITE_IGNORE_FLOCK_LOCK_ERRORS
danea83bc62011-04-01 11:56:32 +00002399 return SQLITE_OK;
drh734c9862008-11-28 15:37:20 +00002400#endif /* SQLITE_IGNORE_FLOCK_LOCK_ERRORS */
danea83bc62011-04-01 11:56:32 +00002401 return SQLITE_IOERR_UNLOCK;
2402 }else{
drh308c2a52010-05-14 11:30:18 +00002403 pFile->eFileLock = NO_LOCK;
drh734c9862008-11-28 15:37:20 +00002404 return SQLITE_OK;
2405 }
2406}
2407
2408/*
2409** Close a file.
2410*/
2411static int flockClose(sqlite3_file *id) {
drha8de1e12015-11-30 00:05:39 +00002412 assert( id!=0 );
2413 flockUnlock(id, NO_LOCK);
2414 return closeUnixFile(id);
drh734c9862008-11-28 15:37:20 +00002415}
2416
2417#endif /* SQLITE_ENABLE_LOCKING_STYLE && !OS_VXWORK */
2418
2419/******************* End of the flock lock implementation *********************
2420******************************************************************************/
2421
2422/******************************************************************************
2423************************ Begin Named Semaphore Locking ************************
2424**
2425** Named semaphore locking is only supported on VxWorks.
drh6b9d6dd2008-12-03 19:34:47 +00002426**
2427** Semaphore locking is like dot-lock and flock in that it really only
2428** supports EXCLUSIVE locking. Only a single process can read or write
2429** the database file at a time. This reduces potential concurrency, but
2430** makes the lock implementation much easier.
drh734c9862008-11-28 15:37:20 +00002431*/
2432#if OS_VXWORKS
2433
drh6b9d6dd2008-12-03 19:34:47 +00002434/*
2435** This routine checks if there is a RESERVED lock held on the specified
2436** file by this or any other process. If such a lock is held, set *pResOut
2437** to a non-zero value otherwise *pResOut is set to zero. The return value
2438** is set to SQLITE_OK unless an I/O error occurs during lock checking.
2439*/
drh8cd5b252015-03-02 22:06:43 +00002440static int semXCheckReservedLock(sqlite3_file *id, int *pResOut) {
drh734c9862008-11-28 15:37:20 +00002441 int rc = SQLITE_OK;
2442 int reserved = 0;
2443 unixFile *pFile = (unixFile*)id;
2444
2445 SimulateIOError( return SQLITE_IOERR_CHECKRESERVEDLOCK; );
2446
2447 assert( pFile );
2448
2449 /* Check if a thread in this process holds such a lock */
drh308c2a52010-05-14 11:30:18 +00002450 if( pFile->eFileLock>SHARED_LOCK ){
drh734c9862008-11-28 15:37:20 +00002451 reserved = 1;
2452 }
2453
2454 /* Otherwise see if some other process holds it. */
2455 if( !reserved ){
drh8af6c222010-05-14 12:43:01 +00002456 sem_t *pSem = pFile->pInode->pSem;
drh734c9862008-11-28 15:37:20 +00002457
2458 if( sem_trywait(pSem)==-1 ){
2459 int tErrno = errno;
2460 if( EAGAIN != tErrno ){
2461 rc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_CHECKRESERVEDLOCK);
drh4bf66fd2015-02-19 02:43:02 +00002462 storeLastErrno(pFile, tErrno);
drh734c9862008-11-28 15:37:20 +00002463 } else {
2464 /* someone else has the lock when we are in NO_LOCK */
drh308c2a52010-05-14 11:30:18 +00002465 reserved = (pFile->eFileLock < SHARED_LOCK);
drh734c9862008-11-28 15:37:20 +00002466 }
2467 }else{
2468 /* we could have it if we want it */
2469 sem_post(pSem);
2470 }
2471 }
drh308c2a52010-05-14 11:30:18 +00002472 OSTRACE(("TEST WR-LOCK %d %d %d (sem)\n", pFile->h, rc, reserved));
drh734c9862008-11-28 15:37:20 +00002473
2474 *pResOut = reserved;
2475 return rc;
2476}
2477
drh6b9d6dd2008-12-03 19:34:47 +00002478/*
drh308c2a52010-05-14 11:30:18 +00002479** Lock the file with the lock specified by parameter eFileLock - one
drh6b9d6dd2008-12-03 19:34:47 +00002480** of the following:
2481**
2482** (1) SHARED_LOCK
2483** (2) RESERVED_LOCK
2484** (3) PENDING_LOCK
2485** (4) EXCLUSIVE_LOCK
2486**
2487** Sometimes when requesting one lock state, additional lock states
2488** are inserted in between. The locking might fail on one of the later
2489** transitions leaving the lock state different from what it started but
2490** still short of its goal. The following chart shows the allowed
2491** transitions and the inserted intermediate states:
2492**
2493** UNLOCKED -> SHARED
2494** SHARED -> RESERVED
2495** SHARED -> (PENDING) -> EXCLUSIVE
2496** RESERVED -> (PENDING) -> EXCLUSIVE
2497** PENDING -> EXCLUSIVE
2498**
2499** Semaphore locks only really support EXCLUSIVE locks. We track intermediate
2500** lock states in the sqlite3_file structure, but all locks SHARED or
2501** above are really EXCLUSIVE locks and exclude all other processes from
2502** access the file.
2503**
2504** This routine will only increase a lock. Use the sqlite3OsUnlock()
2505** routine to lower a locking level.
2506*/
drh8cd5b252015-03-02 22:06:43 +00002507static int semXLock(sqlite3_file *id, int eFileLock) {
drh734c9862008-11-28 15:37:20 +00002508 unixFile *pFile = (unixFile*)id;
drh8af6c222010-05-14 12:43:01 +00002509 sem_t *pSem = pFile->pInode->pSem;
drh734c9862008-11-28 15:37:20 +00002510 int rc = SQLITE_OK;
2511
2512 /* if we already have a lock, it is exclusive.
2513 ** Just adjust level and punt on outta here. */
drh308c2a52010-05-14 11:30:18 +00002514 if (pFile->eFileLock > NO_LOCK) {
2515 pFile->eFileLock = eFileLock;
drh734c9862008-11-28 15:37:20 +00002516 rc = SQLITE_OK;
2517 goto sem_end_lock;
2518 }
2519
2520 /* lock semaphore now but bail out when already locked. */
2521 if( sem_trywait(pSem)==-1 ){
2522 rc = SQLITE_BUSY;
2523 goto sem_end_lock;
2524 }
2525
2526 /* got it, set the type and return ok */
drh308c2a52010-05-14 11:30:18 +00002527 pFile->eFileLock = eFileLock;
drh734c9862008-11-28 15:37:20 +00002528
2529 sem_end_lock:
2530 return rc;
2531}
2532
drh6b9d6dd2008-12-03 19:34:47 +00002533/*
drh308c2a52010-05-14 11:30:18 +00002534** Lower the locking level on file descriptor pFile to eFileLock. eFileLock
drh6b9d6dd2008-12-03 19:34:47 +00002535** must be either NO_LOCK or SHARED_LOCK.
2536**
2537** If the locking level of the file descriptor is already at or below
2538** the requested locking level, this routine is a no-op.
2539*/
drh8cd5b252015-03-02 22:06:43 +00002540static int semXUnlock(sqlite3_file *id, int eFileLock) {
drh734c9862008-11-28 15:37:20 +00002541 unixFile *pFile = (unixFile*)id;
drh8af6c222010-05-14 12:43:01 +00002542 sem_t *pSem = pFile->pInode->pSem;
drh734c9862008-11-28 15:37:20 +00002543
2544 assert( pFile );
2545 assert( pSem );
drh308c2a52010-05-14 11:30:18 +00002546 OSTRACE(("UNLOCK %d %d was %d pid=%d (sem)\n", pFile->h, eFileLock,
drh5ac93652015-03-21 20:59:43 +00002547 pFile->eFileLock, osGetpid(0)));
drh308c2a52010-05-14 11:30:18 +00002548 assert( eFileLock<=SHARED_LOCK );
drh734c9862008-11-28 15:37:20 +00002549
2550 /* no-op if possible */
drh308c2a52010-05-14 11:30:18 +00002551 if( pFile->eFileLock==eFileLock ){
drh734c9862008-11-28 15:37:20 +00002552 return SQLITE_OK;
2553 }
2554
2555 /* shared can just be set because we always have an exclusive */
drh308c2a52010-05-14 11:30:18 +00002556 if (eFileLock==SHARED_LOCK) {
2557 pFile->eFileLock = eFileLock;
drh734c9862008-11-28 15:37:20 +00002558 return SQLITE_OK;
2559 }
2560
2561 /* no, really unlock. */
2562 if ( sem_post(pSem)==-1 ) {
2563 int rc, tErrno = errno;
2564 rc = sqliteErrorFromPosixError(tErrno, SQLITE_IOERR_UNLOCK);
2565 if( IS_LOCK_ERROR(rc) ){
drh4bf66fd2015-02-19 02:43:02 +00002566 storeLastErrno(pFile, tErrno);
drh734c9862008-11-28 15:37:20 +00002567 }
2568 return rc;
2569 }
drh308c2a52010-05-14 11:30:18 +00002570 pFile->eFileLock = NO_LOCK;
drh734c9862008-11-28 15:37:20 +00002571 return SQLITE_OK;
2572}
2573
2574/*
2575 ** Close a file.
drhbfe66312006-10-03 17:40:40 +00002576 */
drh8cd5b252015-03-02 22:06:43 +00002577static int semXClose(sqlite3_file *id) {
drh734c9862008-11-28 15:37:20 +00002578 if( id ){
2579 unixFile *pFile = (unixFile*)id;
drh8cd5b252015-03-02 22:06:43 +00002580 semXUnlock(id, NO_LOCK);
drh734c9862008-11-28 15:37:20 +00002581 assert( pFile );
2582 unixEnterMutex();
danb0ac3e32010-06-16 10:55:42 +00002583 releaseInodeInfo(pFile);
drh734c9862008-11-28 15:37:20 +00002584 unixLeaveMutex();
chw78a13182009-04-07 05:35:03 +00002585 closeUnixFile(id);
drh734c9862008-11-28 15:37:20 +00002586 }
2587 return SQLITE_OK;
2588}
2589
2590#endif /* OS_VXWORKS */
2591/*
2592** Named semaphore locking is only available on VxWorks.
2593**
2594*************** End of the named semaphore lock implementation ****************
2595******************************************************************************/
2596
2597
2598/******************************************************************************
2599*************************** Begin AFP Locking *********************************
2600**
2601** AFP is the Apple Filing Protocol. AFP is a network filesystem found
2602** on Apple Macintosh computers - both OS9 and OSX.
2603**
2604** Third-party implementations of AFP are available. But this code here
2605** only works on OSX.
2606*/
2607
drhd2cb50b2009-01-09 21:41:17 +00002608#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
drh734c9862008-11-28 15:37:20 +00002609/*
2610** The afpLockingContext structure contains all afp lock specific state
2611*/
drhbfe66312006-10-03 17:40:40 +00002612typedef struct afpLockingContext afpLockingContext;
2613struct afpLockingContext {
drh7ed97b92010-01-20 13:07:21 +00002614 int reserved;
drh6b9d6dd2008-12-03 19:34:47 +00002615 const char *dbPath; /* Name of the open file */
drhbfe66312006-10-03 17:40:40 +00002616};
2617
2618struct ByteRangeLockPB2
2619{
2620 unsigned long long offset; /* offset to first byte to lock */
2621 unsigned long long length; /* nbr of bytes to lock */
2622 unsigned long long retRangeStart; /* nbr of 1st byte locked if successful */
2623 unsigned char unLockFlag; /* 1 = unlock, 0 = lock */
2624 unsigned char startEndFlag; /* 1=rel to end of fork, 0=rel to start */
2625 int fd; /* file desc to assoc this lock with */
2626};
2627
drhfd131da2007-08-07 17:13:03 +00002628#define afpfsByteRangeLock2FSCTL _IOWR('z', 23, struct ByteRangeLockPB2)
drhbfe66312006-10-03 17:40:40 +00002629
drh6b9d6dd2008-12-03 19:34:47 +00002630/*
2631** This is a utility for setting or clearing a bit-range lock on an
2632** AFP filesystem.
2633**
2634** Return SQLITE_OK on success, SQLITE_BUSY on failure.
2635*/
2636static int afpSetLock(
2637 const char *path, /* Name of the file to be locked or unlocked */
2638 unixFile *pFile, /* Open file descriptor on path */
2639 unsigned long long offset, /* First byte to be locked */
2640 unsigned long long length, /* Number of bytes to lock */
2641 int setLockFlag /* True to set lock. False to clear lock */
danielk1977ad94b582007-08-20 06:44:22 +00002642){
drh6b9d6dd2008-12-03 19:34:47 +00002643 struct ByteRangeLockPB2 pb;
2644 int err;
drhbfe66312006-10-03 17:40:40 +00002645
2646 pb.unLockFlag = setLockFlag ? 0 : 1;
2647 pb.startEndFlag = 0;
2648 pb.offset = offset;
2649 pb.length = length;
aswift5b1a2562008-08-22 00:22:35 +00002650 pb.fd = pFile->h;
aswiftaebf4132008-11-21 00:10:35 +00002651
drh308c2a52010-05-14 11:30:18 +00002652 OSTRACE(("AFPSETLOCK [%s] for %d%s in range %llx:%llx\n",
drh734c9862008-11-28 15:37:20 +00002653 (setLockFlag?"ON":"OFF"), pFile->h, (pb.fd==-1?"[testval-1]":""),
drh308c2a52010-05-14 11:30:18 +00002654 offset, length));
drhbfe66312006-10-03 17:40:40 +00002655 err = fsctl(path, afpfsByteRangeLock2FSCTL, &pb, 0);
2656 if ( err==-1 ) {
aswift5b1a2562008-08-22 00:22:35 +00002657 int rc;
2658 int tErrno = errno;
drh308c2a52010-05-14 11:30:18 +00002659 OSTRACE(("AFPSETLOCK failed to fsctl() '%s' %d %s\n",
2660 path, tErrno, strerror(tErrno)));
aswiftaebf4132008-11-21 00:10:35 +00002661#ifdef SQLITE_IGNORE_AFP_LOCK_ERRORS
2662 rc = SQLITE_BUSY;
2663#else
drh734c9862008-11-28 15:37:20 +00002664 rc = sqliteErrorFromPosixError(tErrno,
2665 setLockFlag ? SQLITE_IOERR_LOCK : SQLITE_IOERR_UNLOCK);
aswiftaebf4132008-11-21 00:10:35 +00002666#endif /* SQLITE_IGNORE_AFP_LOCK_ERRORS */
aswift5b1a2562008-08-22 00:22:35 +00002667 if( IS_LOCK_ERROR(rc) ){
drh4bf66fd2015-02-19 02:43:02 +00002668 storeLastErrno(pFile, tErrno);
aswift5b1a2562008-08-22 00:22:35 +00002669 }
2670 return rc;
drhbfe66312006-10-03 17:40:40 +00002671 } else {
aswift5b1a2562008-08-22 00:22:35 +00002672 return SQLITE_OK;
drhbfe66312006-10-03 17:40:40 +00002673 }
2674}
2675
drh6b9d6dd2008-12-03 19:34:47 +00002676/*
2677** This routine checks if there is a RESERVED lock held on the specified
2678** file by this or any other process. If such a lock is held, set *pResOut
2679** to a non-zero value otherwise *pResOut is set to zero. The return value
2680** is set to SQLITE_OK unless an I/O error occurs during lock checking.
2681*/
danielk1977e339d652008-06-28 11:23:00 +00002682static int afpCheckReservedLock(sqlite3_file *id, int *pResOut){
aswift5b1a2562008-08-22 00:22:35 +00002683 int rc = SQLITE_OK;
2684 int reserved = 0;
drhbfe66312006-10-03 17:40:40 +00002685 unixFile *pFile = (unixFile*)id;
drh3d4435b2011-08-26 20:55:50 +00002686 afpLockingContext *context;
drhbfe66312006-10-03 17:40:40 +00002687
aswift5b1a2562008-08-22 00:22:35 +00002688 SimulateIOError( return SQLITE_IOERR_CHECKRESERVEDLOCK; );
2689
2690 assert( pFile );
drh3d4435b2011-08-26 20:55:50 +00002691 context = (afpLockingContext *) pFile->lockingContext;
drh7ed97b92010-01-20 13:07:21 +00002692 if( context->reserved ){
2693 *pResOut = 1;
2694 return SQLITE_OK;
2695 }
drh8af6c222010-05-14 12:43:01 +00002696 unixEnterMutex(); /* Because pFile->pInode is shared across threads */
drhbfe66312006-10-03 17:40:40 +00002697
2698 /* Check if a thread in this process holds such a lock */
drh8af6c222010-05-14 12:43:01 +00002699 if( pFile->pInode->eFileLock>SHARED_LOCK ){
aswift5b1a2562008-08-22 00:22:35 +00002700 reserved = 1;
drhbfe66312006-10-03 17:40:40 +00002701 }
2702
2703 /* Otherwise see if some other process holds it.
2704 */
aswift5b1a2562008-08-22 00:22:35 +00002705 if( !reserved ){
2706 /* lock the RESERVED byte */
drh6b9d6dd2008-12-03 19:34:47 +00002707 int lrc = afpSetLock(context->dbPath, pFile, RESERVED_BYTE, 1,1);
aswift5b1a2562008-08-22 00:22:35 +00002708 if( SQLITE_OK==lrc ){
drhbfe66312006-10-03 17:40:40 +00002709 /* if we succeeded in taking the reserved lock, unlock it to restore
2710 ** the original state */
drh6b9d6dd2008-12-03 19:34:47 +00002711 lrc = afpSetLock(context->dbPath, pFile, RESERVED_BYTE, 1, 0);
aswift5b1a2562008-08-22 00:22:35 +00002712 } else {
2713 /* if we failed to get the lock then someone else must have it */
2714 reserved = 1;
2715 }
2716 if( IS_LOCK_ERROR(lrc) ){
2717 rc=lrc;
drhbfe66312006-10-03 17:40:40 +00002718 }
2719 }
drhbfe66312006-10-03 17:40:40 +00002720
drh7ed97b92010-01-20 13:07:21 +00002721 unixLeaveMutex();
drh308c2a52010-05-14 11:30:18 +00002722 OSTRACE(("TEST WR-LOCK %d %d %d (afp)\n", pFile->h, rc, reserved));
aswift5b1a2562008-08-22 00:22:35 +00002723
2724 *pResOut = reserved;
2725 return rc;
drhbfe66312006-10-03 17:40:40 +00002726}
2727
drh6b9d6dd2008-12-03 19:34:47 +00002728/*
drh308c2a52010-05-14 11:30:18 +00002729** Lock the file with the lock specified by parameter eFileLock - one
drh6b9d6dd2008-12-03 19:34:47 +00002730** of the following:
2731**
2732** (1) SHARED_LOCK
2733** (2) RESERVED_LOCK
2734** (3) PENDING_LOCK
2735** (4) EXCLUSIVE_LOCK
2736**
2737** Sometimes when requesting one lock state, additional lock states
2738** are inserted in between. The locking might fail on one of the later
2739** transitions leaving the lock state different from what it started but
2740** still short of its goal. The following chart shows the allowed
2741** transitions and the inserted intermediate states:
2742**
2743** UNLOCKED -> SHARED
2744** SHARED -> RESERVED
2745** SHARED -> (PENDING) -> EXCLUSIVE
2746** RESERVED -> (PENDING) -> EXCLUSIVE
2747** PENDING -> EXCLUSIVE
2748**
2749** This routine will only increase a lock. Use the sqlite3OsUnlock()
2750** routine to lower a locking level.
2751*/
drh308c2a52010-05-14 11:30:18 +00002752static int afpLock(sqlite3_file *id, int eFileLock){
drhbfe66312006-10-03 17:40:40 +00002753 int rc = SQLITE_OK;
2754 unixFile *pFile = (unixFile*)id;
drhd91c68f2010-05-14 14:52:25 +00002755 unixInodeInfo *pInode = pFile->pInode;
drhbfe66312006-10-03 17:40:40 +00002756 afpLockingContext *context = (afpLockingContext *) pFile->lockingContext;
drhbfe66312006-10-03 17:40:40 +00002757
2758 assert( pFile );
drh308c2a52010-05-14 11:30:18 +00002759 OSTRACE(("LOCK %d %s was %s(%s,%d) pid=%d (afp)\n", pFile->h,
2760 azFileLock(eFileLock), azFileLock(pFile->eFileLock),
drh5ac93652015-03-21 20:59:43 +00002761 azFileLock(pInode->eFileLock), pInode->nShared , osGetpid(0)));
drh339eb0b2008-03-07 15:34:11 +00002762
drhbfe66312006-10-03 17:40:40 +00002763 /* If there is already a lock of this type or more restrictive on the
drh339eb0b2008-03-07 15:34:11 +00002764 ** unixFile, do nothing. Don't use the afp_end_lock: exit path, as
drh6c7d5c52008-11-21 20:32:33 +00002765 ** unixEnterMutex() hasn't been called yet.
drh339eb0b2008-03-07 15:34:11 +00002766 */
drh308c2a52010-05-14 11:30:18 +00002767 if( pFile->eFileLock>=eFileLock ){
2768 OSTRACE(("LOCK %d %s ok (already held) (afp)\n", pFile->h,
2769 azFileLock(eFileLock)));
drhbfe66312006-10-03 17:40:40 +00002770 return SQLITE_OK;
2771 }
2772
2773 /* Make sure the locking sequence is correct
drh7ed97b92010-01-20 13:07:21 +00002774 ** (1) We never move from unlocked to anything higher than shared lock.
2775 ** (2) SQLite never explicitly requests a pendig lock.
2776 ** (3) A shared lock is always held when a reserve lock is requested.
drh339eb0b2008-03-07 15:34:11 +00002777 */
drh308c2a52010-05-14 11:30:18 +00002778 assert( pFile->eFileLock!=NO_LOCK || eFileLock==SHARED_LOCK );
2779 assert( eFileLock!=PENDING_LOCK );
2780 assert( eFileLock!=RESERVED_LOCK || pFile->eFileLock==SHARED_LOCK );
drhbfe66312006-10-03 17:40:40 +00002781
drh8af6c222010-05-14 12:43:01 +00002782 /* This mutex is needed because pFile->pInode is shared across threads
drh339eb0b2008-03-07 15:34:11 +00002783 */
drh6c7d5c52008-11-21 20:32:33 +00002784 unixEnterMutex();
drh8af6c222010-05-14 12:43:01 +00002785 pInode = pFile->pInode;
drh7ed97b92010-01-20 13:07:21 +00002786
2787 /* If some thread using this PID has a lock via a different unixFile*
2788 ** handle that precludes the requested lock, return BUSY.
2789 */
drh8af6c222010-05-14 12:43:01 +00002790 if( (pFile->eFileLock!=pInode->eFileLock &&
2791 (pInode->eFileLock>=PENDING_LOCK || eFileLock>SHARED_LOCK))
drh7ed97b92010-01-20 13:07:21 +00002792 ){
2793 rc = SQLITE_BUSY;
2794 goto afp_end_lock;
2795 }
2796
2797 /* If a SHARED lock is requested, and some thread using this PID already
2798 ** has a SHARED or RESERVED lock, then increment reference counts and
2799 ** return SQLITE_OK.
2800 */
drh308c2a52010-05-14 11:30:18 +00002801 if( eFileLock==SHARED_LOCK &&
drh8af6c222010-05-14 12:43:01 +00002802 (pInode->eFileLock==SHARED_LOCK || pInode->eFileLock==RESERVED_LOCK) ){
drh308c2a52010-05-14 11:30:18 +00002803 assert( eFileLock==SHARED_LOCK );
2804 assert( pFile->eFileLock==0 );
drh8af6c222010-05-14 12:43:01 +00002805 assert( pInode->nShared>0 );
drh308c2a52010-05-14 11:30:18 +00002806 pFile->eFileLock = SHARED_LOCK;
drh8af6c222010-05-14 12:43:01 +00002807 pInode->nShared++;
2808 pInode->nLock++;
drh7ed97b92010-01-20 13:07:21 +00002809 goto afp_end_lock;
2810 }
drhbfe66312006-10-03 17:40:40 +00002811
2812 /* A PENDING lock is needed before acquiring a SHARED lock and before
drh339eb0b2008-03-07 15:34:11 +00002813 ** acquiring an EXCLUSIVE lock. For the SHARED lock, the PENDING will
2814 ** be released.
2815 */
drh308c2a52010-05-14 11:30:18 +00002816 if( eFileLock==SHARED_LOCK
2817 || (eFileLock==EXCLUSIVE_LOCK && pFile->eFileLock<PENDING_LOCK)
drh339eb0b2008-03-07 15:34:11 +00002818 ){
2819 int failed;
drh6b9d6dd2008-12-03 19:34:47 +00002820 failed = afpSetLock(context->dbPath, pFile, PENDING_BYTE, 1, 1);
drhbfe66312006-10-03 17:40:40 +00002821 if (failed) {
aswift5b1a2562008-08-22 00:22:35 +00002822 rc = failed;
drhbfe66312006-10-03 17:40:40 +00002823 goto afp_end_lock;
2824 }
2825 }
2826
2827 /* If control gets to this point, then actually go ahead and make
drh339eb0b2008-03-07 15:34:11 +00002828 ** operating system calls for the specified lock.
2829 */
drh308c2a52010-05-14 11:30:18 +00002830 if( eFileLock==SHARED_LOCK ){
drh3d4435b2011-08-26 20:55:50 +00002831 int lrc1, lrc2, lrc1Errno = 0;
drh7ed97b92010-01-20 13:07:21 +00002832 long lk, mask;
drhbfe66312006-10-03 17:40:40 +00002833
drh8af6c222010-05-14 12:43:01 +00002834 assert( pInode->nShared==0 );
2835 assert( pInode->eFileLock==0 );
drh7ed97b92010-01-20 13:07:21 +00002836
2837 mask = (sizeof(long)==8) ? LARGEST_INT64 : 0x7fffffff;
aswift5b1a2562008-08-22 00:22:35 +00002838 /* Now get the read-lock SHARED_LOCK */
drhbfe66312006-10-03 17:40:40 +00002839 /* note that the quality of the randomness doesn't matter that much */
2840 lk = random();
drh8af6c222010-05-14 12:43:01 +00002841 pInode->sharedByte = (lk & mask)%(SHARED_SIZE - 1);
drh6b9d6dd2008-12-03 19:34:47 +00002842 lrc1 = afpSetLock(context->dbPath, pFile,
drh8af6c222010-05-14 12:43:01 +00002843 SHARED_FIRST+pInode->sharedByte, 1, 1);
aswift5b1a2562008-08-22 00:22:35 +00002844 if( IS_LOCK_ERROR(lrc1) ){
2845 lrc1Errno = pFile->lastErrno;
drhbfe66312006-10-03 17:40:40 +00002846 }
aswift5b1a2562008-08-22 00:22:35 +00002847 /* Drop the temporary PENDING lock */
drh6b9d6dd2008-12-03 19:34:47 +00002848 lrc2 = afpSetLock(context->dbPath, pFile, PENDING_BYTE, 1, 0);
drhbfe66312006-10-03 17:40:40 +00002849
aswift5b1a2562008-08-22 00:22:35 +00002850 if( IS_LOCK_ERROR(lrc1) ) {
drh4bf66fd2015-02-19 02:43:02 +00002851 storeLastErrno(pFile, lrc1Errno);
aswift5b1a2562008-08-22 00:22:35 +00002852 rc = lrc1;
2853 goto afp_end_lock;
2854 } else if( IS_LOCK_ERROR(lrc2) ){
2855 rc = lrc2;
2856 goto afp_end_lock;
2857 } else if( lrc1 != SQLITE_OK ) {
2858 rc = lrc1;
drhbfe66312006-10-03 17:40:40 +00002859 } else {
drh308c2a52010-05-14 11:30:18 +00002860 pFile->eFileLock = SHARED_LOCK;
drh8af6c222010-05-14 12:43:01 +00002861 pInode->nLock++;
2862 pInode->nShared = 1;
drhbfe66312006-10-03 17:40:40 +00002863 }
drh8af6c222010-05-14 12:43:01 +00002864 }else if( eFileLock==EXCLUSIVE_LOCK && pInode->nShared>1 ){
drh7ed97b92010-01-20 13:07:21 +00002865 /* We are trying for an exclusive lock but another thread in this
2866 ** same process is still holding a shared lock. */
2867 rc = SQLITE_BUSY;
drhbfe66312006-10-03 17:40:40 +00002868 }else{
2869 /* The request was for a RESERVED or EXCLUSIVE lock. It is
2870 ** assumed that there is a SHARED or greater lock on the file
2871 ** already.
2872 */
2873 int failed = 0;
drh308c2a52010-05-14 11:30:18 +00002874 assert( 0!=pFile->eFileLock );
2875 if (eFileLock >= RESERVED_LOCK && pFile->eFileLock < RESERVED_LOCK) {
drhbfe66312006-10-03 17:40:40 +00002876 /* Acquire a RESERVED lock */
drh6b9d6dd2008-12-03 19:34:47 +00002877 failed = afpSetLock(context->dbPath, pFile, RESERVED_BYTE, 1,1);
drh7ed97b92010-01-20 13:07:21 +00002878 if( !failed ){
2879 context->reserved = 1;
2880 }
drhbfe66312006-10-03 17:40:40 +00002881 }
drh308c2a52010-05-14 11:30:18 +00002882 if (!failed && eFileLock == EXCLUSIVE_LOCK) {
drhbfe66312006-10-03 17:40:40 +00002883 /* Acquire an EXCLUSIVE lock */
2884
2885 /* Remove the shared lock before trying the range. we'll need to
danielk1977e339d652008-06-28 11:23:00 +00002886 ** reestablish the shared lock if we can't get the afpUnlock
drhbfe66312006-10-03 17:40:40 +00002887 */
drh6b9d6dd2008-12-03 19:34:47 +00002888 if( !(failed = afpSetLock(context->dbPath, pFile, SHARED_FIRST +
drh8af6c222010-05-14 12:43:01 +00002889 pInode->sharedByte, 1, 0)) ){
aswiftaebf4132008-11-21 00:10:35 +00002890 int failed2 = SQLITE_OK;
drhbfe66312006-10-03 17:40:40 +00002891 /* now attemmpt to get the exclusive lock range */
drh6b9d6dd2008-12-03 19:34:47 +00002892 failed = afpSetLock(context->dbPath, pFile, SHARED_FIRST,
drhbfe66312006-10-03 17:40:40 +00002893 SHARED_SIZE, 1);
drh6b9d6dd2008-12-03 19:34:47 +00002894 if( failed && (failed2 = afpSetLock(context->dbPath, pFile,
drh8af6c222010-05-14 12:43:01 +00002895 SHARED_FIRST + pInode->sharedByte, 1, 1)) ){
aswiftaebf4132008-11-21 00:10:35 +00002896 /* Can't reestablish the shared lock. Sqlite can't deal, this is
2897 ** a critical I/O error
2898 */
2899 rc = ((failed & SQLITE_IOERR) == SQLITE_IOERR) ? failed2 :
2900 SQLITE_IOERR_LOCK;
2901 goto afp_end_lock;
2902 }
2903 }else{
aswift5b1a2562008-08-22 00:22:35 +00002904 rc = failed;
drhbfe66312006-10-03 17:40:40 +00002905 }
2906 }
aswift5b1a2562008-08-22 00:22:35 +00002907 if( failed ){
2908 rc = failed;
drhbfe66312006-10-03 17:40:40 +00002909 }
2910 }
2911
2912 if( rc==SQLITE_OK ){
drh308c2a52010-05-14 11:30:18 +00002913 pFile->eFileLock = eFileLock;
drh8af6c222010-05-14 12:43:01 +00002914 pInode->eFileLock = eFileLock;
drh308c2a52010-05-14 11:30:18 +00002915 }else if( eFileLock==EXCLUSIVE_LOCK ){
2916 pFile->eFileLock = PENDING_LOCK;
drh8af6c222010-05-14 12:43:01 +00002917 pInode->eFileLock = PENDING_LOCK;
drhbfe66312006-10-03 17:40:40 +00002918 }
2919
2920afp_end_lock:
drh6c7d5c52008-11-21 20:32:33 +00002921 unixLeaveMutex();
drh308c2a52010-05-14 11:30:18 +00002922 OSTRACE(("LOCK %d %s %s (afp)\n", pFile->h, azFileLock(eFileLock),
2923 rc==SQLITE_OK ? "ok" : "failed"));
drhbfe66312006-10-03 17:40:40 +00002924 return rc;
2925}
2926
2927/*
drh308c2a52010-05-14 11:30:18 +00002928** Lower the locking level on file descriptor pFile to eFileLock. eFileLock
drh339eb0b2008-03-07 15:34:11 +00002929** must be either NO_LOCK or SHARED_LOCK.
2930**
2931** If the locking level of the file descriptor is already at or below
2932** the requested locking level, this routine is a no-op.
2933*/
drh308c2a52010-05-14 11:30:18 +00002934static int afpUnlock(sqlite3_file *id, int eFileLock) {
drhbfe66312006-10-03 17:40:40 +00002935 int rc = SQLITE_OK;
2936 unixFile *pFile = (unixFile*)id;
drhd91c68f2010-05-14 14:52:25 +00002937 unixInodeInfo *pInode;
drh7ed97b92010-01-20 13:07:21 +00002938 afpLockingContext *context = (afpLockingContext *) pFile->lockingContext;
2939 int skipShared = 0;
2940#ifdef SQLITE_TEST
2941 int h = pFile->h;
2942#endif
drhbfe66312006-10-03 17:40:40 +00002943
2944 assert( pFile );
drh308c2a52010-05-14 11:30:18 +00002945 OSTRACE(("UNLOCK %d %d was %d(%d,%d) pid=%d (afp)\n", pFile->h, eFileLock,
drh8af6c222010-05-14 12:43:01 +00002946 pFile->eFileLock, pFile->pInode->eFileLock, pFile->pInode->nShared,
drh5ac93652015-03-21 20:59:43 +00002947 osGetpid(0)));
aswift5b1a2562008-08-22 00:22:35 +00002948
drh308c2a52010-05-14 11:30:18 +00002949 assert( eFileLock<=SHARED_LOCK );
2950 if( pFile->eFileLock<=eFileLock ){
drhbfe66312006-10-03 17:40:40 +00002951 return SQLITE_OK;
2952 }
drh6c7d5c52008-11-21 20:32:33 +00002953 unixEnterMutex();
drh8af6c222010-05-14 12:43:01 +00002954 pInode = pFile->pInode;
2955 assert( pInode->nShared!=0 );
drh308c2a52010-05-14 11:30:18 +00002956 if( pFile->eFileLock>SHARED_LOCK ){
drh8af6c222010-05-14 12:43:01 +00002957 assert( pInode->eFileLock==pFile->eFileLock );
drh7ed97b92010-01-20 13:07:21 +00002958 SimulateIOErrorBenign(1);
2959 SimulateIOError( h=(-1) )
2960 SimulateIOErrorBenign(0);
2961
drhd3d8c042012-05-29 17:02:40 +00002962#ifdef SQLITE_DEBUG
drh7ed97b92010-01-20 13:07:21 +00002963 /* When reducing a lock such that other processes can start
2964 ** reading the database file again, make sure that the
2965 ** transaction counter was updated if any part of the database
2966 ** file changed. If the transaction counter is not updated,
2967 ** other connections to the same file might not realize that
2968 ** the file has changed and hence might not know to flush their
2969 ** cache. The use of a stale cache can lead to database corruption.
2970 */
2971 assert( pFile->inNormalWrite==0
2972 || pFile->dbUpdate==0
2973 || pFile->transCntrChng==1 );
2974 pFile->inNormalWrite = 0;
2975#endif
aswiftaebf4132008-11-21 00:10:35 +00002976
drh308c2a52010-05-14 11:30:18 +00002977 if( pFile->eFileLock==EXCLUSIVE_LOCK ){
drh7ed97b92010-01-20 13:07:21 +00002978 rc = afpSetLock(context->dbPath, pFile, SHARED_FIRST, SHARED_SIZE, 0);
drh8af6c222010-05-14 12:43:01 +00002979 if( rc==SQLITE_OK && (eFileLock==SHARED_LOCK || pInode->nShared>1) ){
aswiftaebf4132008-11-21 00:10:35 +00002980 /* only re-establish the shared lock if necessary */
drh8af6c222010-05-14 12:43:01 +00002981 int sharedLockByte = SHARED_FIRST+pInode->sharedByte;
drh7ed97b92010-01-20 13:07:21 +00002982 rc = afpSetLock(context->dbPath, pFile, sharedLockByte, 1, 1);
2983 } else {
2984 skipShared = 1;
aswiftaebf4132008-11-21 00:10:35 +00002985 }
2986 }
drh308c2a52010-05-14 11:30:18 +00002987 if( rc==SQLITE_OK && pFile->eFileLock>=PENDING_LOCK ){
drh7ed97b92010-01-20 13:07:21 +00002988 rc = afpSetLock(context->dbPath, pFile, PENDING_BYTE, 1, 0);
aswiftaebf4132008-11-21 00:10:35 +00002989 }
drh308c2a52010-05-14 11:30:18 +00002990 if( rc==SQLITE_OK && pFile->eFileLock>=RESERVED_LOCK && context->reserved ){
drh7ed97b92010-01-20 13:07:21 +00002991 rc = afpSetLock(context->dbPath, pFile, RESERVED_BYTE, 1, 0);
2992 if( !rc ){
2993 context->reserved = 0;
2994 }
aswiftaebf4132008-11-21 00:10:35 +00002995 }
drh8af6c222010-05-14 12:43:01 +00002996 if( rc==SQLITE_OK && (eFileLock==SHARED_LOCK || pInode->nShared>1)){
2997 pInode->eFileLock = SHARED_LOCK;
drh7ed97b92010-01-20 13:07:21 +00002998 }
aswiftaebf4132008-11-21 00:10:35 +00002999 }
drh308c2a52010-05-14 11:30:18 +00003000 if( rc==SQLITE_OK && eFileLock==NO_LOCK ){
drhbfe66312006-10-03 17:40:40 +00003001
drh7ed97b92010-01-20 13:07:21 +00003002 /* Decrement the shared lock counter. Release the lock using an
3003 ** OS call only when all threads in this same process have released
3004 ** the lock.
3005 */
drh8af6c222010-05-14 12:43:01 +00003006 unsigned long long sharedLockByte = SHARED_FIRST+pInode->sharedByte;
3007 pInode->nShared--;
3008 if( pInode->nShared==0 ){
drh7ed97b92010-01-20 13:07:21 +00003009 SimulateIOErrorBenign(1);
3010 SimulateIOError( h=(-1) )
3011 SimulateIOErrorBenign(0);
3012 if( !skipShared ){
3013 rc = afpSetLock(context->dbPath, pFile, sharedLockByte, 1, 0);
3014 }
3015 if( !rc ){
drh8af6c222010-05-14 12:43:01 +00003016 pInode->eFileLock = NO_LOCK;
drh308c2a52010-05-14 11:30:18 +00003017 pFile->eFileLock = NO_LOCK;
drh7ed97b92010-01-20 13:07:21 +00003018 }
3019 }
3020 if( rc==SQLITE_OK ){
drh8af6c222010-05-14 12:43:01 +00003021 pInode->nLock--;
3022 assert( pInode->nLock>=0 );
3023 if( pInode->nLock==0 ){
drh0e9365c2011-03-02 02:08:13 +00003024 closePendingFds(pFile);
drhbfe66312006-10-03 17:40:40 +00003025 }
3026 }
drhbfe66312006-10-03 17:40:40 +00003027 }
drh7ed97b92010-01-20 13:07:21 +00003028
drh6c7d5c52008-11-21 20:32:33 +00003029 unixLeaveMutex();
drh308c2a52010-05-14 11:30:18 +00003030 if( rc==SQLITE_OK ) pFile->eFileLock = eFileLock;
drhbfe66312006-10-03 17:40:40 +00003031 return rc;
3032}
3033
3034/*
drh339eb0b2008-03-07 15:34:11 +00003035** Close a file & cleanup AFP specific locking context
3036*/
danielk1977e339d652008-06-28 11:23:00 +00003037static int afpClose(sqlite3_file *id) {
drh7ed97b92010-01-20 13:07:21 +00003038 int rc = SQLITE_OK;
drha8de1e12015-11-30 00:05:39 +00003039 unixFile *pFile = (unixFile*)id;
3040 assert( id!=0 );
3041 afpUnlock(id, NO_LOCK);
3042 unixEnterMutex();
3043 if( pFile->pInode && pFile->pInode->nLock ){
3044 /* If there are outstanding locks, do not actually close the file just
3045 ** yet because that would clear those locks. Instead, add the file
3046 ** descriptor to pInode->aPending. It will be automatically closed when
3047 ** the last lock is cleared.
3048 */
3049 setPendingFd(pFile);
danielk1977e339d652008-06-28 11:23:00 +00003050 }
drha8de1e12015-11-30 00:05:39 +00003051 releaseInodeInfo(pFile);
3052 sqlite3_free(pFile->lockingContext);
3053 rc = closeUnixFile(id);
3054 unixLeaveMutex();
drh7ed97b92010-01-20 13:07:21 +00003055 return rc;
drhbfe66312006-10-03 17:40:40 +00003056}
3057
drhd2cb50b2009-01-09 21:41:17 +00003058#endif /* defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE */
drh734c9862008-11-28 15:37:20 +00003059/*
3060** The code above is the AFP lock implementation. The code is specific
3061** to MacOSX and does not work on other unix platforms. No alternative
3062** is available. If you don't compile for a mac, then the "unix-afp"
3063** VFS is not available.
3064**
3065********************* End of the AFP lock implementation **********************
3066******************************************************************************/
drhbfe66312006-10-03 17:40:40 +00003067
drh7ed97b92010-01-20 13:07:21 +00003068/******************************************************************************
3069*************************** Begin NFS Locking ********************************/
3070
3071#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
3072/*
drh308c2a52010-05-14 11:30:18 +00003073 ** Lower the locking level on file descriptor pFile to eFileLock. eFileLock
drh7ed97b92010-01-20 13:07:21 +00003074 ** must be either NO_LOCK or SHARED_LOCK.
3075 **
3076 ** If the locking level of the file descriptor is already at or below
3077 ** the requested locking level, this routine is a no-op.
3078 */
drh308c2a52010-05-14 11:30:18 +00003079static int nfsUnlock(sqlite3_file *id, int eFileLock){
drha7e61d82011-03-12 17:02:57 +00003080 return posixUnlock(id, eFileLock, 1);
drh7ed97b92010-01-20 13:07:21 +00003081}
3082
3083#endif /* defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE */
3084/*
3085** The code above is the NFS lock implementation. The code is specific
3086** to MacOSX and does not work on other unix platforms. No alternative
3087** is available.
3088**
3089********************* End of the NFS lock implementation **********************
3090******************************************************************************/
drh734c9862008-11-28 15:37:20 +00003091
3092/******************************************************************************
3093**************** Non-locking sqlite3_file methods *****************************
3094**
3095** The next division contains implementations for all methods of the
3096** sqlite3_file object other than the locking methods. The locking
3097** methods were defined in divisions above (one locking method per
3098** division). Those methods that are common to all locking modes
3099** are gather together into this division.
3100*/
drhbfe66312006-10-03 17:40:40 +00003101
3102/*
drh734c9862008-11-28 15:37:20 +00003103** Seek to the offset passed as the second argument, then read cnt
3104** bytes into pBuf. Return the number of bytes actually read.
3105**
3106** NB: If you define USE_PREAD or USE_PREAD64, then it might also
3107** be necessary to define _XOPEN_SOURCE to be 500. This varies from
3108** one system to another. Since SQLite does not define USE_PREAD
peter.d.reid60ec9142014-09-06 16:39:46 +00003109** in any form by default, we will not attempt to define _XOPEN_SOURCE.
drh734c9862008-11-28 15:37:20 +00003110** See tickets #2741 and #2681.
3111**
3112** To avoid stomping the errno value on a failed read the lastErrno value
3113** is set before returning.
drh339eb0b2008-03-07 15:34:11 +00003114*/
drh734c9862008-11-28 15:37:20 +00003115static int seekAndRead(unixFile *id, sqlite3_int64 offset, void *pBuf, int cnt){
3116 int got;
drh58024642011-11-07 18:16:00 +00003117 int prior = 0;
drha46cadc2016-03-04 03:02:06 +00003118#if (!defined(USE_PREAD) && !defined(USE_PREAD64))
3119 i64 newOffset;
3120#endif
drh734c9862008-11-28 15:37:20 +00003121 TIMER_START;
drhc1fd2cf2012-10-01 12:16:26 +00003122 assert( cnt==(cnt&0x1ffff) );
drh35a03792013-08-29 23:34:53 +00003123 assert( id->h>2 );
drh58024642011-11-07 18:16:00 +00003124 do{
drh734c9862008-11-28 15:37:20 +00003125#if defined(USE_PREAD)
drh58024642011-11-07 18:16:00 +00003126 got = osPread(id->h, pBuf, cnt, offset);
3127 SimulateIOError( got = -1 );
drh734c9862008-11-28 15:37:20 +00003128#elif defined(USE_PREAD64)
drh58024642011-11-07 18:16:00 +00003129 got = osPread64(id->h, pBuf, cnt, offset);
3130 SimulateIOError( got = -1 );
drh734c9862008-11-28 15:37:20 +00003131#else
drha46cadc2016-03-04 03:02:06 +00003132 newOffset = lseek(id->h, offset, SEEK_SET);
3133 SimulateIOError( newOffset = -1 );
3134 if( newOffset<0 ){
3135 storeLastErrno((unixFile*)id, errno);
3136 return -1;
3137 }
3138 got = osRead(id->h, pBuf, cnt);
drh734c9862008-11-28 15:37:20 +00003139#endif
drh58024642011-11-07 18:16:00 +00003140 if( got==cnt ) break;
3141 if( got<0 ){
3142 if( errno==EINTR ){ got = 1; continue; }
3143 prior = 0;
drh4bf66fd2015-02-19 02:43:02 +00003144 storeLastErrno((unixFile*)id, errno);
drh58024642011-11-07 18:16:00 +00003145 break;
3146 }else if( got>0 ){
3147 cnt -= got;
3148 offset += got;
3149 prior += got;
3150 pBuf = (void*)(got + (char*)pBuf);
3151 }
3152 }while( got>0 );
drh734c9862008-11-28 15:37:20 +00003153 TIMER_END;
drh58024642011-11-07 18:16:00 +00003154 OSTRACE(("READ %-3d %5d %7lld %llu\n",
3155 id->h, got+prior, offset-prior, TIMER_ELAPSED));
3156 return got+prior;
drhbfe66312006-10-03 17:40:40 +00003157}
3158
3159/*
drh734c9862008-11-28 15:37:20 +00003160** Read data from a file into a buffer. Return SQLITE_OK if all
3161** bytes were read successfully and SQLITE_IOERR if anything goes
3162** wrong.
drh339eb0b2008-03-07 15:34:11 +00003163*/
drh734c9862008-11-28 15:37:20 +00003164static int unixRead(
3165 sqlite3_file *id,
3166 void *pBuf,
3167 int amt,
3168 sqlite3_int64 offset
3169){
dan08da86a2009-08-21 17:18:03 +00003170 unixFile *pFile = (unixFile *)id;
drh734c9862008-11-28 15:37:20 +00003171 int got;
3172 assert( id );
drh6cf9d8d2013-05-09 18:12:40 +00003173 assert( offset>=0 );
3174 assert( amt>0 );
drh08c6d442009-02-09 17:34:07 +00003175
dan08da86a2009-08-21 17:18:03 +00003176 /* If this is a database file (not a journal, master-journal or temp
3177 ** file), the bytes in the locking range should never be read or written. */
dan7c246102010-04-12 19:00:29 +00003178#if 0
dane946c392009-08-22 11:39:46 +00003179 assert( pFile->pUnused==0
dan08da86a2009-08-21 17:18:03 +00003180 || offset>=PENDING_BYTE+512
3181 || offset+amt<=PENDING_BYTE
3182 );
dan7c246102010-04-12 19:00:29 +00003183#endif
drh08c6d442009-02-09 17:34:07 +00003184
drh9b4c59f2013-04-15 17:03:42 +00003185#if SQLITE_MAX_MMAP_SIZE>0
drh6c569632013-03-26 18:48:11 +00003186 /* Deal with as much of this read request as possible by transfering
3187 ** data from the memory mapping using memcpy(). */
danf23da962013-03-23 21:00:41 +00003188 if( offset<pFile->mmapSize ){
3189 if( offset+amt <= pFile->mmapSize ){
3190 memcpy(pBuf, &((u8 *)(pFile->pMapRegion))[offset], amt);
3191 return SQLITE_OK;
3192 }else{
3193 int nCopy = pFile->mmapSize - offset;
3194 memcpy(pBuf, &((u8 *)(pFile->pMapRegion))[offset], nCopy);
3195 pBuf = &((u8 *)pBuf)[nCopy];
3196 amt -= nCopy;
3197 offset += nCopy;
3198 }
3199 }
drh6e0b6d52013-04-09 16:19:20 +00003200#endif
danf23da962013-03-23 21:00:41 +00003201
dan08da86a2009-08-21 17:18:03 +00003202 got = seekAndRead(pFile, offset, pBuf, amt);
drh734c9862008-11-28 15:37:20 +00003203 if( got==amt ){
3204 return SQLITE_OK;
3205 }else if( got<0 ){
3206 /* lastErrno set by seekAndRead */
3207 return SQLITE_IOERR_READ;
3208 }else{
drh4bf66fd2015-02-19 02:43:02 +00003209 storeLastErrno(pFile, 0); /* not a system error */
drh734c9862008-11-28 15:37:20 +00003210 /* Unread parts of the buffer must be zero-filled */
3211 memset(&((char*)pBuf)[got], 0, amt-got);
3212 return SQLITE_IOERR_SHORT_READ;
3213 }
3214}
3215
3216/*
dan47a2b4a2013-04-26 16:09:29 +00003217** Attempt to seek the file-descriptor passed as the first argument to
3218** absolute offset iOff, then attempt to write nBuf bytes of data from
3219** pBuf to it. If an error occurs, return -1 and set *piErrno. Otherwise,
3220** return the actual number of bytes written (which may be less than
3221** nBuf).
3222*/
3223static int seekAndWriteFd(
3224 int fd, /* File descriptor to write to */
3225 i64 iOff, /* File offset to begin writing at */
3226 const void *pBuf, /* Copy data from this buffer to the file */
3227 int nBuf, /* Size of buffer pBuf in bytes */
3228 int *piErrno /* OUT: Error number if error occurs */
3229){
3230 int rc = 0; /* Value returned by system call */
3231
3232 assert( nBuf==(nBuf&0x1ffff) );
drh35a03792013-08-29 23:34:53 +00003233 assert( fd>2 );
drhe1818ec2015-12-01 16:21:35 +00003234 assert( piErrno!=0 );
dan47a2b4a2013-04-26 16:09:29 +00003235 nBuf &= 0x1ffff;
3236 TIMER_START;
3237
3238#if defined(USE_PREAD)
drh2da47d32015-02-21 00:56:05 +00003239 do{ rc = (int)osPwrite(fd, pBuf, nBuf, iOff); }while( rc<0 && errno==EINTR );
dan47a2b4a2013-04-26 16:09:29 +00003240#elif defined(USE_PREAD64)
drh2da47d32015-02-21 00:56:05 +00003241 do{ rc = (int)osPwrite64(fd, pBuf, nBuf, iOff);}while( rc<0 && errno==EINTR);
dan47a2b4a2013-04-26 16:09:29 +00003242#else
3243 do{
3244 i64 iSeek = lseek(fd, iOff, SEEK_SET);
drhe1818ec2015-12-01 16:21:35 +00003245 SimulateIOError( iSeek = -1 );
3246 if( iSeek<0 ){
3247 rc = -1;
3248 break;
dan47a2b4a2013-04-26 16:09:29 +00003249 }
3250 rc = osWrite(fd, pBuf, nBuf);
3251 }while( rc<0 && errno==EINTR );
3252#endif
3253
3254 TIMER_END;
3255 OSTRACE(("WRITE %-3d %5d %7lld %llu\n", fd, rc, iOff, TIMER_ELAPSED));
3256
drhe1818ec2015-12-01 16:21:35 +00003257 if( rc<0 ) *piErrno = errno;
dan47a2b4a2013-04-26 16:09:29 +00003258 return rc;
3259}
3260
3261
3262/*
drh734c9862008-11-28 15:37:20 +00003263** Seek to the offset in id->offset then read cnt bytes into pBuf.
3264** Return the number of bytes actually read. Update the offset.
3265**
3266** To avoid stomping the errno value on a failed write the lastErrno value
3267** is set before returning.
3268*/
3269static int seekAndWrite(unixFile *id, i64 offset, const void *pBuf, int cnt){
dan47a2b4a2013-04-26 16:09:29 +00003270 return seekAndWriteFd(id->h, offset, pBuf, cnt, &id->lastErrno);
drh734c9862008-11-28 15:37:20 +00003271}
3272
3273
3274/*
3275** Write data from a buffer into a file. Return SQLITE_OK on success
3276** or some other error code on failure.
3277*/
3278static int unixWrite(
3279 sqlite3_file *id,
3280 const void *pBuf,
3281 int amt,
3282 sqlite3_int64 offset
3283){
dan08da86a2009-08-21 17:18:03 +00003284 unixFile *pFile = (unixFile*)id;
drh734c9862008-11-28 15:37:20 +00003285 int wrote = 0;
3286 assert( id );
3287 assert( amt>0 );
drh8f941bc2009-01-14 23:03:40 +00003288
dan08da86a2009-08-21 17:18:03 +00003289 /* If this is a database file (not a journal, master-journal or temp
3290 ** file), the bytes in the locking range should never be read or written. */
dan7c246102010-04-12 19:00:29 +00003291#if 0
dane946c392009-08-22 11:39:46 +00003292 assert( pFile->pUnused==0
dan08da86a2009-08-21 17:18:03 +00003293 || offset>=PENDING_BYTE+512
3294 || offset+amt<=PENDING_BYTE
3295 );
dan7c246102010-04-12 19:00:29 +00003296#endif
drh08c6d442009-02-09 17:34:07 +00003297
drhd3d8c042012-05-29 17:02:40 +00003298#ifdef SQLITE_DEBUG
drh8f941bc2009-01-14 23:03:40 +00003299 /* If we are doing a normal write to a database file (as opposed to
3300 ** doing a hot-journal rollback or a write to some file other than a
3301 ** normal database file) then record the fact that the database
3302 ** has changed. If the transaction counter is modified, record that
3303 ** fact too.
3304 */
dan08da86a2009-08-21 17:18:03 +00003305 if( pFile->inNormalWrite ){
drh8f941bc2009-01-14 23:03:40 +00003306 pFile->dbUpdate = 1; /* The database has been modified */
3307 if( offset<=24 && offset+amt>=27 ){
drha6d90f02009-01-16 23:47:42 +00003308 int rc;
drh8f941bc2009-01-14 23:03:40 +00003309 char oldCntr[4];
3310 SimulateIOErrorBenign(1);
drha6d90f02009-01-16 23:47:42 +00003311 rc = seekAndRead(pFile, 24, oldCntr, 4);
drh8f941bc2009-01-14 23:03:40 +00003312 SimulateIOErrorBenign(0);
drha6d90f02009-01-16 23:47:42 +00003313 if( rc!=4 || memcmp(oldCntr, &((char*)pBuf)[24-offset], 4)!=0 ){
drh8f941bc2009-01-14 23:03:40 +00003314 pFile->transCntrChng = 1; /* The transaction counter has changed */
3315 }
3316 }
3317 }
3318#endif
3319
danfe33e392015-11-17 20:56:06 +00003320#if defined(SQLITE_MMAP_READWRITE) && SQLITE_MAX_MMAP_SIZE>0
danf23da962013-03-23 21:00:41 +00003321 /* Deal with as much of this write request as possible by transfering
3322 ** data from the memory mapping using memcpy(). */
3323 if( offset<pFile->mmapSize ){
3324 if( offset+amt <= pFile->mmapSize ){
3325 memcpy(&((u8 *)(pFile->pMapRegion))[offset], pBuf, amt);
3326 return SQLITE_OK;
3327 }else{
3328 int nCopy = pFile->mmapSize - offset;
3329 memcpy(&((u8 *)(pFile->pMapRegion))[offset], pBuf, nCopy);
3330 pBuf = &((u8 *)pBuf)[nCopy];
3331 amt -= nCopy;
3332 offset += nCopy;
3333 }
3334 }
drh6e0b6d52013-04-09 16:19:20 +00003335#endif
drh02bf8b42015-09-01 23:51:53 +00003336
3337 while( (wrote = seekAndWrite(pFile, offset, pBuf, amt))<amt && wrote>0 ){
drh734c9862008-11-28 15:37:20 +00003338 amt -= wrote;
3339 offset += wrote;
3340 pBuf = &((char*)pBuf)[wrote];
3341 }
3342 SimulateIOError(( wrote=(-1), amt=1 ));
3343 SimulateDiskfullError(( wrote=0, amt=1 ));
dan6e09d692010-07-27 18:34:15 +00003344
drh02bf8b42015-09-01 23:51:53 +00003345 if( amt>wrote ){
drha21b83b2011-04-15 12:36:10 +00003346 if( wrote<0 && pFile->lastErrno!=ENOSPC ){
drh734c9862008-11-28 15:37:20 +00003347 /* lastErrno set by seekAndWrite */
3348 return SQLITE_IOERR_WRITE;
3349 }else{
drh4bf66fd2015-02-19 02:43:02 +00003350 storeLastErrno(pFile, 0); /* not a system error */
drh734c9862008-11-28 15:37:20 +00003351 return SQLITE_FULL;
3352 }
3353 }
dan6e09d692010-07-27 18:34:15 +00003354
drh734c9862008-11-28 15:37:20 +00003355 return SQLITE_OK;
3356}
3357
3358#ifdef SQLITE_TEST
3359/*
3360** Count the number of fullsyncs and normal syncs. This is used to test
drh6b9d6dd2008-12-03 19:34:47 +00003361** that syncs and fullsyncs are occurring at the right times.
drh734c9862008-11-28 15:37:20 +00003362*/
3363int sqlite3_sync_count = 0;
3364int sqlite3_fullsync_count = 0;
3365#endif
3366
3367/*
drh89240432009-03-25 01:06:01 +00003368** We do not trust systems to provide a working fdatasync(). Some do.
drh20f8e132011-08-31 21:01:55 +00003369** Others do no. To be safe, we will stick with the (slightly slower)
3370** fsync(). If you know that your system does support fdatasync() correctly,
drhf7a4a1b2015-01-10 18:02:45 +00003371** then simply compile with -Dfdatasync=fdatasync or -DHAVE_FDATASYNC
drh734c9862008-11-28 15:37:20 +00003372*/
drhf7a4a1b2015-01-10 18:02:45 +00003373#if !defined(fdatasync) && !HAVE_FDATASYNC
drh734c9862008-11-28 15:37:20 +00003374# define fdatasync fsync
3375#endif
3376
3377/*
3378** Define HAVE_FULLFSYNC to 0 or 1 depending on whether or not
3379** the F_FULLFSYNC macro is defined. F_FULLFSYNC is currently
3380** only available on Mac OS X. But that could change.
3381*/
3382#ifdef F_FULLFSYNC
3383# define HAVE_FULLFSYNC 1
3384#else
3385# define HAVE_FULLFSYNC 0
3386#endif
3387
3388
3389/*
3390** The fsync() system call does not work as advertised on many
3391** unix systems. The following procedure is an attempt to make
3392** it work better.
3393**
3394** The SQLITE_NO_SYNC macro disables all fsync()s. This is useful
3395** for testing when we want to run through the test suite quickly.
3396** You are strongly advised *not* to deploy with SQLITE_NO_SYNC
3397** enabled, however, since with SQLITE_NO_SYNC enabled, an OS crash
3398** or power failure will likely corrupt the database file.
drh0b647ff2009-03-21 14:41:04 +00003399**
3400** SQLite sets the dataOnly flag if the size of the file is unchanged.
3401** The idea behind dataOnly is that it should only write the file content
3402** to disk, not the inode. We only set dataOnly if the file size is
3403** unchanged since the file size is part of the inode. However,
3404** Ted Ts'o tells us that fdatasync() will also write the inode if the
3405** file size has changed. The only real difference between fdatasync()
3406** and fsync(), Ted tells us, is that fdatasync() will not flush the
3407** inode if the mtime or owner or other inode attributes have changed.
3408** We only care about the file size, not the other file attributes, so
3409** as far as SQLite is concerned, an fdatasync() is always adequate.
3410** So, we always use fdatasync() if it is available, regardless of
3411** the value of the dataOnly flag.
drh734c9862008-11-28 15:37:20 +00003412*/
3413static int full_fsync(int fd, int fullSync, int dataOnly){
chw97185482008-11-17 08:05:31 +00003414 int rc;
drh734c9862008-11-28 15:37:20 +00003415
3416 /* The following "ifdef/elif/else/" block has the same structure as
3417 ** the one below. It is replicated here solely to avoid cluttering
3418 ** up the real code with the UNUSED_PARAMETER() macros.
3419 */
3420#ifdef SQLITE_NO_SYNC
3421 UNUSED_PARAMETER(fd);
3422 UNUSED_PARAMETER(fullSync);
3423 UNUSED_PARAMETER(dataOnly);
3424#elif HAVE_FULLFSYNC
3425 UNUSED_PARAMETER(dataOnly);
3426#else
3427 UNUSED_PARAMETER(fullSync);
drh0b647ff2009-03-21 14:41:04 +00003428 UNUSED_PARAMETER(dataOnly);
drh734c9862008-11-28 15:37:20 +00003429#endif
3430
3431 /* Record the number of times that we do a normal fsync() and
3432 ** FULLSYNC. This is used during testing to verify that this procedure
3433 ** gets called with the correct arguments.
3434 */
3435#ifdef SQLITE_TEST
3436 if( fullSync ) sqlite3_fullsync_count++;
3437 sqlite3_sync_count++;
3438#endif
3439
3440 /* If we compiled with the SQLITE_NO_SYNC flag, then syncing is a
drh2c8fd122015-12-02 02:33:36 +00003441 ** no-op. But go ahead and call fstat() to validate the file
3442 ** descriptor as we need a method to provoke a failure during
3443 ** coverate testing.
drh734c9862008-11-28 15:37:20 +00003444 */
3445#ifdef SQLITE_NO_SYNC
drh2c8fd122015-12-02 02:33:36 +00003446 {
3447 struct stat buf;
3448 rc = osFstat(fd, &buf);
3449 }
drh734c9862008-11-28 15:37:20 +00003450#elif HAVE_FULLFSYNC
3451 if( fullSync ){
drh99ab3b12011-03-02 15:09:07 +00003452 rc = osFcntl(fd, F_FULLFSYNC, 0);
drh734c9862008-11-28 15:37:20 +00003453 }else{
3454 rc = 1;
3455 }
3456 /* If the FULLFSYNC failed, fall back to attempting an fsync().
drh6b9d6dd2008-12-03 19:34:47 +00003457 ** It shouldn't be possible for fullfsync to fail on the local
3458 ** file system (on OSX), so failure indicates that FULLFSYNC
3459 ** isn't supported for this file system. So, attempt an fsync
3460 ** and (for now) ignore the overhead of a superfluous fcntl call.
3461 ** It'd be better to detect fullfsync support once and avoid
3462 ** the fcntl call every time sync is called.
3463 */
drh734c9862008-11-28 15:37:20 +00003464 if( rc ) rc = fsync(fd);
3465
drh7ed97b92010-01-20 13:07:21 +00003466#elif defined(__APPLE__)
3467 /* fdatasync() on HFS+ doesn't yet flush the file size if it changed correctly
3468 ** so currently we default to the macro that redefines fdatasync to fsync
3469 */
3470 rc = fsync(fd);
drh734c9862008-11-28 15:37:20 +00003471#else
drh0b647ff2009-03-21 14:41:04 +00003472 rc = fdatasync(fd);
drhc7288ee2009-01-15 04:30:02 +00003473#if OS_VXWORKS
drh0b647ff2009-03-21 14:41:04 +00003474 if( rc==-1 && errno==ENOTSUP ){
drh734c9862008-11-28 15:37:20 +00003475 rc = fsync(fd);
3476 }
drh0b647ff2009-03-21 14:41:04 +00003477#endif /* OS_VXWORKS */
drh734c9862008-11-28 15:37:20 +00003478#endif /* ifdef SQLITE_NO_SYNC elif HAVE_FULLFSYNC */
3479
3480 if( OS_VXWORKS && rc!= -1 ){
3481 rc = 0;
3482 }
chw97185482008-11-17 08:05:31 +00003483 return rc;
drhbfe66312006-10-03 17:40:40 +00003484}
3485
drh734c9862008-11-28 15:37:20 +00003486/*
drh0059eae2011-08-08 23:48:40 +00003487** Open a file descriptor to the directory containing file zFilename.
3488** If successful, *pFd is set to the opened file descriptor and
3489** SQLITE_OK is returned. If an error occurs, either SQLITE_NOMEM
3490** or SQLITE_CANTOPEN is returned and *pFd is set to an undefined
3491** value.
3492**
drh90315a22011-08-10 01:52:12 +00003493** The directory file descriptor is used for only one thing - to
3494** fsync() a directory to make sure file creation and deletion events
3495** are flushed to disk. Such fsyncs are not needed on newer
3496** journaling filesystems, but are required on older filesystems.
3497**
3498** This routine can be overridden using the xSetSysCall interface.
3499** The ability to override this routine was added in support of the
3500** chromium sandbox. Opening a directory is a security risk (we are
3501** told) so making it overrideable allows the chromium sandbox to
3502** replace this routine with a harmless no-op. To make this routine
3503** a no-op, replace it with a stub that returns SQLITE_OK but leaves
3504** *pFd set to a negative number.
3505**
drh0059eae2011-08-08 23:48:40 +00003506** If SQLITE_OK is returned, the caller is responsible for closing
3507** the file descriptor *pFd using close().
3508*/
3509static int openDirectory(const char *zFilename, int *pFd){
3510 int ii;
3511 int fd = -1;
3512 char zDirname[MAX_PATHNAME+1];
3513
3514 sqlite3_snprintf(MAX_PATHNAME, zDirname, "%s", zFilename);
drhdc278512015-12-07 18:18:33 +00003515 for(ii=(int)strlen(zDirname); ii>0 && zDirname[ii]!='/'; ii--);
3516 if( ii>0 ){
drh0059eae2011-08-08 23:48:40 +00003517 zDirname[ii] = '\0';
drhdc278512015-12-07 18:18:33 +00003518 }else{
3519 if( zDirname[0]!='/' ) zDirname[0] = '.';
3520 zDirname[1] = 0;
3521 }
3522 fd = robust_open(zDirname, O_RDONLY|O_BINARY, 0);
3523 if( fd>=0 ){
3524 OSTRACE(("OPENDIR %-3d %s\n", fd, zDirname));
drh0059eae2011-08-08 23:48:40 +00003525 }
3526 *pFd = fd;
drhacb6b282015-11-26 10:37:05 +00003527 if( fd>=0 ) return SQLITE_OK;
3528 return unixLogError(SQLITE_CANTOPEN_BKPT, "openDirectory", zDirname);
drh0059eae2011-08-08 23:48:40 +00003529}
3530
3531/*
drh734c9862008-11-28 15:37:20 +00003532** Make sure all writes to a particular file are committed to disk.
3533**
3534** If dataOnly==0 then both the file itself and its metadata (file
3535** size, access time, etc) are synced. If dataOnly!=0 then only the
3536** file data is synced.
3537**
3538** Under Unix, also make sure that the directory entry for the file
3539** has been created by fsync-ing the directory that contains the file.
3540** If we do not do this and we encounter a power failure, the directory
3541** entry for the journal might not exist after we reboot. The next
3542** SQLite to access the file will not know that the journal exists (because
3543** the directory entry for the journal was never created) and the transaction
3544** will not roll back - possibly leading to database corruption.
3545*/
3546static int unixSync(sqlite3_file *id, int flags){
3547 int rc;
3548 unixFile *pFile = (unixFile*)id;
3549
3550 int isDataOnly = (flags&SQLITE_SYNC_DATAONLY);
3551 int isFullsync = (flags&0x0F)==SQLITE_SYNC_FULL;
3552
3553 /* Check that one of SQLITE_SYNC_NORMAL or FULL was passed */
3554 assert((flags&0x0F)==SQLITE_SYNC_NORMAL
3555 || (flags&0x0F)==SQLITE_SYNC_FULL
3556 );
3557
3558 /* Unix cannot, but some systems may return SQLITE_FULL from here. This
3559 ** line is to test that doing so does not cause any problems.
3560 */
3561 SimulateDiskfullError( return SQLITE_FULL );
3562
3563 assert( pFile );
drh308c2a52010-05-14 11:30:18 +00003564 OSTRACE(("SYNC %-3d\n", pFile->h));
drh734c9862008-11-28 15:37:20 +00003565 rc = full_fsync(pFile->h, isFullsync, isDataOnly);
3566 SimulateIOError( rc=1 );
3567 if( rc ){
drh4bf66fd2015-02-19 02:43:02 +00003568 storeLastErrno(pFile, errno);
dane18d4952011-02-21 11:46:24 +00003569 return unixLogError(SQLITE_IOERR_FSYNC, "full_fsync", pFile->zPath);
drh734c9862008-11-28 15:37:20 +00003570 }
drh0059eae2011-08-08 23:48:40 +00003571
3572 /* Also fsync the directory containing the file if the DIRSYNC flag
mistachkin48864df2013-03-21 21:20:32 +00003573 ** is set. This is a one-time occurrence. Many systems (examples: AIX)
drh90315a22011-08-10 01:52:12 +00003574 ** are unable to fsync a directory, so ignore errors on the fsync.
drh0059eae2011-08-08 23:48:40 +00003575 */
3576 if( pFile->ctrlFlags & UNIXFILE_DIRSYNC ){
3577 int dirfd;
3578 OSTRACE(("DIRSYNC %s (have_fullfsync=%d fullsync=%d)\n", pFile->zPath,
drh308c2a52010-05-14 11:30:18 +00003579 HAVE_FULLFSYNC, isFullsync));
drh90315a22011-08-10 01:52:12 +00003580 rc = osOpenDirectory(pFile->zPath, &dirfd);
drhacb6b282015-11-26 10:37:05 +00003581 if( rc==SQLITE_OK ){
drh0059eae2011-08-08 23:48:40 +00003582 full_fsync(dirfd, 0, 0);
3583 robust_close(pFile, dirfd, __LINE__);
drhacb6b282015-11-26 10:37:05 +00003584 }else{
3585 assert( rc==SQLITE_CANTOPEN );
drh1ee6f742011-08-23 20:11:32 +00003586 rc = SQLITE_OK;
drh734c9862008-11-28 15:37:20 +00003587 }
drh0059eae2011-08-08 23:48:40 +00003588 pFile->ctrlFlags &= ~UNIXFILE_DIRSYNC;
drh734c9862008-11-28 15:37:20 +00003589 }
3590 return rc;
3591}
3592
3593/*
3594** Truncate an open file to a specified size
3595*/
3596static int unixTruncate(sqlite3_file *id, i64 nByte){
dan6e09d692010-07-27 18:34:15 +00003597 unixFile *pFile = (unixFile *)id;
drh734c9862008-11-28 15:37:20 +00003598 int rc;
dan6e09d692010-07-27 18:34:15 +00003599 assert( pFile );
drh734c9862008-11-28 15:37:20 +00003600 SimulateIOError( return SQLITE_IOERR_TRUNCATE );
dan6e09d692010-07-27 18:34:15 +00003601
3602 /* If the user has configured a chunk-size for this file, truncate the
3603 ** file so that it consists of an integer number of chunks (i.e. the
3604 ** actual file size after the operation may be larger than the requested
3605 ** size).
3606 */
drhb8af4b72012-04-05 20:04:39 +00003607 if( pFile->szChunk>0 ){
dan6e09d692010-07-27 18:34:15 +00003608 nByte = ((nByte + pFile->szChunk - 1)/pFile->szChunk) * pFile->szChunk;
3609 }
3610
dan2ee53412014-09-06 16:49:40 +00003611 rc = robust_ftruncate(pFile->h, nByte);
drh734c9862008-11-28 15:37:20 +00003612 if( rc ){
drh4bf66fd2015-02-19 02:43:02 +00003613 storeLastErrno(pFile, errno);
dane18d4952011-02-21 11:46:24 +00003614 return unixLogError(SQLITE_IOERR_TRUNCATE, "ftruncate", pFile->zPath);
drh734c9862008-11-28 15:37:20 +00003615 }else{
drhd3d8c042012-05-29 17:02:40 +00003616#ifdef SQLITE_DEBUG
drh3313b142009-11-06 04:13:18 +00003617 /* If we are doing a normal write to a database file (as opposed to
3618 ** doing a hot-journal rollback or a write to some file other than a
3619 ** normal database file) and we truncate the file to zero length,
3620 ** that effectively updates the change counter. This might happen
3621 ** when restoring a database using the backup API from a zero-length
3622 ** source.
3623 */
dan6e09d692010-07-27 18:34:15 +00003624 if( pFile->inNormalWrite && nByte==0 ){
3625 pFile->transCntrChng = 1;
drh3313b142009-11-06 04:13:18 +00003626 }
danf23da962013-03-23 21:00:41 +00003627#endif
danc0003312013-03-22 17:46:11 +00003628
mistachkine98844f2013-08-24 00:59:24 +00003629#if SQLITE_MAX_MMAP_SIZE>0
danc0003312013-03-22 17:46:11 +00003630 /* If the file was just truncated to a size smaller than the currently
3631 ** mapped region, reduce the effective mapping size as well. SQLite will
3632 ** use read() and write() to access data beyond this point from now on.
3633 */
3634 if( nByte<pFile->mmapSize ){
3635 pFile->mmapSize = nByte;
3636 }
mistachkine98844f2013-08-24 00:59:24 +00003637#endif
drh3313b142009-11-06 04:13:18 +00003638
drh734c9862008-11-28 15:37:20 +00003639 return SQLITE_OK;
3640 }
3641}
3642
3643/*
3644** Determine the current size of a file in bytes
3645*/
3646static int unixFileSize(sqlite3_file *id, i64 *pSize){
3647 int rc;
3648 struct stat buf;
drh3044b512014-06-16 16:41:52 +00003649 assert( id );
3650 rc = osFstat(((unixFile*)id)->h, &buf);
drh734c9862008-11-28 15:37:20 +00003651 SimulateIOError( rc=1 );
3652 if( rc!=0 ){
drh4bf66fd2015-02-19 02:43:02 +00003653 storeLastErrno((unixFile*)id, errno);
drh734c9862008-11-28 15:37:20 +00003654 return SQLITE_IOERR_FSTAT;
3655 }
3656 *pSize = buf.st_size;
3657
drh8af6c222010-05-14 12:43:01 +00003658 /* When opening a zero-size database, the findInodeInfo() procedure
drh734c9862008-11-28 15:37:20 +00003659 ** writes a single byte into that file in order to work around a bug
3660 ** in the OS-X msdos filesystem. In order to avoid problems with upper
3661 ** layers, we need to report this file size as zero even though it is
3662 ** really 1. Ticket #3260.
3663 */
3664 if( *pSize==1 ) *pSize = 0;
3665
3666
3667 return SQLITE_OK;
3668}
3669
drhd2cb50b2009-01-09 21:41:17 +00003670#if SQLITE_ENABLE_LOCKING_STYLE && defined(__APPLE__)
drh715ff302008-12-03 22:32:44 +00003671/*
3672** Handler for proxy-locking file-control verbs. Defined below in the
3673** proxying locking division.
3674*/
3675static int proxyFileControl(sqlite3_file*,int,void*);
drh947bd802008-12-04 12:34:15 +00003676#endif
drh715ff302008-12-03 22:32:44 +00003677
dan502019c2010-07-28 14:26:17 +00003678/*
3679** This function is called to handle the SQLITE_FCNTL_SIZE_HINT
drh3d4435b2011-08-26 20:55:50 +00003680** file-control operation. Enlarge the database to nBytes in size
3681** (rounded up to the next chunk-size). If the database is already
3682** nBytes or larger, this routine is a no-op.
dan502019c2010-07-28 14:26:17 +00003683*/
3684static int fcntlSizeHint(unixFile *pFile, i64 nByte){
mistachkind589a542011-08-30 01:23:34 +00003685 if( pFile->szChunk>0 ){
dan502019c2010-07-28 14:26:17 +00003686 i64 nSize; /* Required file size */
3687 struct stat buf; /* Used to hold return values of fstat() */
3688
drh4bf66fd2015-02-19 02:43:02 +00003689 if( osFstat(pFile->h, &buf) ){
3690 return SQLITE_IOERR_FSTAT;
3691 }
dan502019c2010-07-28 14:26:17 +00003692
3693 nSize = ((nByte+pFile->szChunk-1) / pFile->szChunk) * pFile->szChunk;
3694 if( nSize>(i64)buf.st_size ){
dan661d71a2011-03-30 19:08:03 +00003695
dan502019c2010-07-28 14:26:17 +00003696#if defined(HAVE_POSIX_FALLOCATE) && HAVE_POSIX_FALLOCATE
dan661d71a2011-03-30 19:08:03 +00003697 /* The code below is handling the return value of osFallocate()
3698 ** correctly. posix_fallocate() is defined to "returns zero on success,
3699 ** or an error number on failure". See the manpage for details. */
3700 int err;
drhff812312011-02-23 13:33:46 +00003701 do{
dan661d71a2011-03-30 19:08:03 +00003702 err = osFallocate(pFile->h, buf.st_size, nSize-buf.st_size);
3703 }while( err==EINTR );
3704 if( err ) return SQLITE_IOERR_WRITE;
dan502019c2010-07-28 14:26:17 +00003705#else
dan592bf7f2014-12-30 19:58:31 +00003706 /* If the OS does not have posix_fallocate(), fake it. Write a
3707 ** single byte to the last byte in each block that falls entirely
3708 ** within the extended region. Then, if required, a single byte
3709 ** at offset (nSize-1), to set the size of the file correctly.
3710 ** This is a similar technique to that used by glibc on systems
3711 ** that do not have a real fallocate() call.
dan502019c2010-07-28 14:26:17 +00003712 */
3713 int nBlk = buf.st_blksize; /* File-system block size */
danef3d66c2015-01-06 21:31:47 +00003714 int nWrite = 0; /* Number of bytes written by seekAndWrite */
dan502019c2010-07-28 14:26:17 +00003715 i64 iWrite; /* Next offset to write to */
dan502019c2010-07-28 14:26:17 +00003716
drh053378d2015-12-01 22:09:42 +00003717 iWrite = (buf.st_size/nBlk)*nBlk + nBlk - 1;
dan592bf7f2014-12-30 19:58:31 +00003718 assert( iWrite>=buf.st_size );
dan592bf7f2014-12-30 19:58:31 +00003719 assert( ((iWrite+1)%nBlk)==0 );
drh053378d2015-12-01 22:09:42 +00003720 for(/*no-op*/; iWrite<nSize+nBlk-1; iWrite+=nBlk ){
3721 if( iWrite>=nSize ) iWrite = nSize - 1;
danef3d66c2015-01-06 21:31:47 +00003722 nWrite = seekAndWrite(pFile, iWrite, "", 1);
dandc5df0f2011-04-06 19:15:45 +00003723 if( nWrite!=1 ) return SQLITE_IOERR_WRITE;
dandc5df0f2011-04-06 19:15:45 +00003724 }
dan502019c2010-07-28 14:26:17 +00003725#endif
3726 }
3727 }
3728
mistachkine98844f2013-08-24 00:59:24 +00003729#if SQLITE_MAX_MMAP_SIZE>0
drh9b4c59f2013-04-15 17:03:42 +00003730 if( pFile->mmapSizeMax>0 && nByte>pFile->mmapSize ){
danf23da962013-03-23 21:00:41 +00003731 int rc;
3732 if( pFile->szChunk<=0 ){
3733 if( robust_ftruncate(pFile->h, nByte) ){
drh4bf66fd2015-02-19 02:43:02 +00003734 storeLastErrno(pFile, errno);
danf23da962013-03-23 21:00:41 +00003735 return unixLogError(SQLITE_IOERR_TRUNCATE, "ftruncate", pFile->zPath);
3736 }
3737 }
3738
3739 rc = unixMapfile(pFile, nByte);
3740 return rc;
3741 }
mistachkine98844f2013-08-24 00:59:24 +00003742#endif
danf23da962013-03-23 21:00:41 +00003743
dan502019c2010-07-28 14:26:17 +00003744 return SQLITE_OK;
3745}
danielk1977ad94b582007-08-20 06:44:22 +00003746
danielk1977e3026632004-06-22 11:29:02 +00003747/*
peter.d.reid60ec9142014-09-06 16:39:46 +00003748** If *pArg is initially negative then this is a query. Set *pArg to
drhf12b3f62011-12-21 14:42:29 +00003749** 1 or 0 depending on whether or not bit mask of pFile->ctrlFlags is set.
3750**
3751** If *pArg is 0 or 1, then clear or set the mask bit of pFile->ctrlFlags.
3752*/
3753static void unixModeBit(unixFile *pFile, unsigned char mask, int *pArg){
3754 if( *pArg<0 ){
3755 *pArg = (pFile->ctrlFlags & mask)!=0;
3756 }else if( (*pArg)==0 ){
3757 pFile->ctrlFlags &= ~mask;
3758 }else{
3759 pFile->ctrlFlags |= mask;
3760 }
3761}
3762
drh696b33e2012-12-06 19:01:42 +00003763/* Forward declaration */
3764static int unixGetTempname(int nBuf, char *zBuf);
3765
drhf12b3f62011-12-21 14:42:29 +00003766/*
drh9e33c2c2007-08-31 18:34:59 +00003767** Information and control of an open file handle.
drh18839212005-11-26 03:43:23 +00003768*/
drhcc6bb3e2007-08-31 16:11:35 +00003769static int unixFileControl(sqlite3_file *id, int op, void *pArg){
drhf0b190d2011-07-26 16:03:07 +00003770 unixFile *pFile = (unixFile*)id;
drh9e33c2c2007-08-31 18:34:59 +00003771 switch( op ){
3772 case SQLITE_FCNTL_LOCKSTATE: {
drhf0b190d2011-07-26 16:03:07 +00003773 *(int*)pArg = pFile->eFileLock;
drh9e33c2c2007-08-31 18:34:59 +00003774 return SQLITE_OK;
3775 }
drh4bf66fd2015-02-19 02:43:02 +00003776 case SQLITE_FCNTL_LAST_ERRNO: {
drhf0b190d2011-07-26 16:03:07 +00003777 *(int*)pArg = pFile->lastErrno;
drh7708e972008-11-29 00:56:52 +00003778 return SQLITE_OK;
3779 }
dan6e09d692010-07-27 18:34:15 +00003780 case SQLITE_FCNTL_CHUNK_SIZE: {
drhf0b190d2011-07-26 16:03:07 +00003781 pFile->szChunk = *(int *)pArg;
dan502019c2010-07-28 14:26:17 +00003782 return SQLITE_OK;
dan6e09d692010-07-27 18:34:15 +00003783 }
drh9ff27ec2010-05-19 19:26:05 +00003784 case SQLITE_FCNTL_SIZE_HINT: {
danda04ea42011-08-23 05:10:39 +00003785 int rc;
3786 SimulateIOErrorBenign(1);
3787 rc = fcntlSizeHint(pFile, *(i64 *)pArg);
3788 SimulateIOErrorBenign(0);
3789 return rc;
drhf0b190d2011-07-26 16:03:07 +00003790 }
3791 case SQLITE_FCNTL_PERSIST_WAL: {
drhf12b3f62011-12-21 14:42:29 +00003792 unixModeBit(pFile, UNIXFILE_PERSIST_WAL, (int*)pArg);
3793 return SQLITE_OK;
3794 }
drhcb15f352011-12-23 01:04:17 +00003795 case SQLITE_FCNTL_POWERSAFE_OVERWRITE: {
3796 unixModeBit(pFile, UNIXFILE_PSOW, (int*)pArg);
drhf0b190d2011-07-26 16:03:07 +00003797 return SQLITE_OK;
drh9ff27ec2010-05-19 19:26:05 +00003798 }
drhde60fc22011-12-14 17:53:36 +00003799 case SQLITE_FCNTL_VFSNAME: {
3800 *(char**)pArg = sqlite3_mprintf("%s", pFile->pVfs->zName);
3801 return SQLITE_OK;
3802 }
drh696b33e2012-12-06 19:01:42 +00003803 case SQLITE_FCNTL_TEMPFILENAME: {
drhf3cdcdc2015-04-29 16:50:28 +00003804 char *zTFile = sqlite3_malloc64( pFile->pVfs->mxPathname );
drh696b33e2012-12-06 19:01:42 +00003805 if( zTFile ){
3806 unixGetTempname(pFile->pVfs->mxPathname, zTFile);
3807 *(char**)pArg = zTFile;
3808 }
3809 return SQLITE_OK;
3810 }
drhb959a012013-12-07 12:29:22 +00003811 case SQLITE_FCNTL_HAS_MOVED: {
3812 *(int*)pArg = fileHasMoved(pFile);
3813 return SQLITE_OK;
3814 }
mistachkine98844f2013-08-24 00:59:24 +00003815#if SQLITE_MAX_MMAP_SIZE>0
drh9b4c59f2013-04-15 17:03:42 +00003816 case SQLITE_FCNTL_MMAP_SIZE: {
drh34f74902013-04-03 13:09:18 +00003817 i64 newLimit = *(i64*)pArg;
drh34e258c2013-05-23 01:40:53 +00003818 int rc = SQLITE_OK;
drh9b4c59f2013-04-15 17:03:42 +00003819 if( newLimit>sqlite3GlobalConfig.mxMmap ){
3820 newLimit = sqlite3GlobalConfig.mxMmap;
3821 }
3822 *(i64*)pArg = pFile->mmapSizeMax;
drh34e258c2013-05-23 01:40:53 +00003823 if( newLimit>=0 && newLimit!=pFile->mmapSizeMax && pFile->nFetchOut==0 ){
drh9b4c59f2013-04-15 17:03:42 +00003824 pFile->mmapSizeMax = newLimit;
drh34e258c2013-05-23 01:40:53 +00003825 if( pFile->mmapSize>0 ){
3826 unixUnmapfile(pFile);
3827 rc = unixMapfile(pFile, -1);
3828 }
danbcb8a862013-04-08 15:30:41 +00003829 }
drh34e258c2013-05-23 01:40:53 +00003830 return rc;
danb2d3de32013-03-14 18:34:37 +00003831 }
mistachkine98844f2013-08-24 00:59:24 +00003832#endif
drhd3d8c042012-05-29 17:02:40 +00003833#ifdef SQLITE_DEBUG
drh8f941bc2009-01-14 23:03:40 +00003834 /* The pager calls this method to signal that it has done
3835 ** a rollback and that the database is therefore unchanged and
3836 ** it hence it is OK for the transaction change counter to be
3837 ** unchanged.
3838 */
3839 case SQLITE_FCNTL_DB_UNCHANGED: {
3840 ((unixFile*)id)->dbUpdate = 0;
3841 return SQLITE_OK;
3842 }
3843#endif
drhd2cb50b2009-01-09 21:41:17 +00003844#if SQLITE_ENABLE_LOCKING_STYLE && defined(__APPLE__)
drh4bf66fd2015-02-19 02:43:02 +00003845 case SQLITE_FCNTL_SET_LOCKPROXYFILE:
3846 case SQLITE_FCNTL_GET_LOCKPROXYFILE: {
drh715ff302008-12-03 22:32:44 +00003847 return proxyFileControl(id,op,pArg);
drh7708e972008-11-29 00:56:52 +00003848 }
drhd2cb50b2009-01-09 21:41:17 +00003849#endif /* SQLITE_ENABLE_LOCKING_STYLE && defined(__APPLE__) */
drh9e33c2c2007-08-31 18:34:59 +00003850 }
drh0b52b7d2011-01-26 19:46:22 +00003851 return SQLITE_NOTFOUND;
drh9cbe6352005-11-29 03:13:21 +00003852}
3853
3854/*
danielk1977a3d4c882007-03-23 10:08:38 +00003855** Return the sector size in bytes of the underlying block device for
3856** the specified file. This is almost always 512 bytes, but may be
3857** larger for some devices.
3858**
3859** SQLite code assumes this function cannot fail. It also assumes that
3860** if two files are created in the same file-system directory (i.e.
drh85b623f2007-12-13 21:54:09 +00003861** a database and its journal file) that the sector size will be the
danielk1977a3d4c882007-03-23 10:08:38 +00003862** same for both.
3863*/
drh537dddf2012-10-26 13:46:24 +00003864#ifndef __QNXNTO__
3865static int unixSectorSize(sqlite3_file *NotUsed){
3866 UNUSED_PARAMETER(NotUsed);
drh8942d412012-01-02 18:20:14 +00003867 return SQLITE_DEFAULT_SECTOR_SIZE;
danielk1977a3d4c882007-03-23 10:08:38 +00003868}
drh537dddf2012-10-26 13:46:24 +00003869#endif
3870
3871/*
3872** The following version of unixSectorSize() is optimized for QNX.
3873*/
3874#ifdef __QNXNTO__
3875#include <sys/dcmd_blk.h>
3876#include <sys/statvfs.h>
3877static int unixSectorSize(sqlite3_file *id){
3878 unixFile *pFile = (unixFile*)id;
3879 if( pFile->sectorSize == 0 ){
3880 struct statvfs fsInfo;
3881
3882 /* Set defaults for non-supported filesystems */
3883 pFile->sectorSize = SQLITE_DEFAULT_SECTOR_SIZE;
3884 pFile->deviceCharacteristics = 0;
3885 if( fstatvfs(pFile->h, &fsInfo) == -1 ) {
3886 return pFile->sectorSize;
3887 }
3888
3889 if( !strcmp(fsInfo.f_basetype, "tmp") ) {
3890 pFile->sectorSize = fsInfo.f_bsize;
3891 pFile->deviceCharacteristics =
3892 SQLITE_IOCAP_ATOMIC4K | /* All ram filesystem writes are atomic */
3893 SQLITE_IOCAP_SAFE_APPEND | /* growing the file does not occur until
3894 ** the write succeeds */
3895 SQLITE_IOCAP_SEQUENTIAL | /* The ram filesystem has no write behind
3896 ** so it is ordered */
3897 0;
3898 }else if( strstr(fsInfo.f_basetype, "etfs") ){
3899 pFile->sectorSize = fsInfo.f_bsize;
3900 pFile->deviceCharacteristics =
3901 /* etfs cluster size writes are atomic */
3902 (pFile->sectorSize / 512 * SQLITE_IOCAP_ATOMIC512) |
3903 SQLITE_IOCAP_SAFE_APPEND | /* growing the file does not occur until
3904 ** the write succeeds */
3905 SQLITE_IOCAP_SEQUENTIAL | /* The ram filesystem has no write behind
3906 ** so it is ordered */
3907 0;
3908 }else if( !strcmp(fsInfo.f_basetype, "qnx6") ){
3909 pFile->sectorSize = fsInfo.f_bsize;
3910 pFile->deviceCharacteristics =
3911 SQLITE_IOCAP_ATOMIC | /* All filesystem writes are atomic */
3912 SQLITE_IOCAP_SAFE_APPEND | /* growing the file does not occur until
3913 ** the write succeeds */
3914 SQLITE_IOCAP_SEQUENTIAL | /* The ram filesystem has no write behind
3915 ** so it is ordered */
3916 0;
3917 }else if( !strcmp(fsInfo.f_basetype, "qnx4") ){
3918 pFile->sectorSize = fsInfo.f_bsize;
3919 pFile->deviceCharacteristics =
3920 /* full bitset of atomics from max sector size and smaller */
3921 ((pFile->sectorSize / 512 * SQLITE_IOCAP_ATOMIC512) << 1) - 2 |
3922 SQLITE_IOCAP_SEQUENTIAL | /* The ram filesystem has no write behind
3923 ** so it is ordered */
3924 0;
3925 }else if( strstr(fsInfo.f_basetype, "dos") ){
3926 pFile->sectorSize = fsInfo.f_bsize;
3927 pFile->deviceCharacteristics =
3928 /* full bitset of atomics from max sector size and smaller */
3929 ((pFile->sectorSize / 512 * SQLITE_IOCAP_ATOMIC512) << 1) - 2 |
3930 SQLITE_IOCAP_SEQUENTIAL | /* The ram filesystem has no write behind
3931 ** so it is ordered */
3932 0;
3933 }else{
3934 pFile->deviceCharacteristics =
3935 SQLITE_IOCAP_ATOMIC512 | /* blocks are atomic */
3936 SQLITE_IOCAP_SAFE_APPEND | /* growing the file does not occur until
3937 ** the write succeeds */
3938 0;
3939 }
3940 }
3941 /* Last chance verification. If the sector size isn't a multiple of 512
3942 ** then it isn't valid.*/
3943 if( pFile->sectorSize % 512 != 0 ){
3944 pFile->deviceCharacteristics = 0;
3945 pFile->sectorSize = SQLITE_DEFAULT_SECTOR_SIZE;
3946 }
3947 return pFile->sectorSize;
3948}
3949#endif /* __QNXNTO__ */
danielk1977a3d4c882007-03-23 10:08:38 +00003950
danielk197790949c22007-08-17 16:50:38 +00003951/*
drhf12b3f62011-12-21 14:42:29 +00003952** Return the device characteristics for the file.
3953**
drhcb15f352011-12-23 01:04:17 +00003954** This VFS is set up to return SQLITE_IOCAP_POWERSAFE_OVERWRITE by default.
peter.d.reid60ec9142014-09-06 16:39:46 +00003955** However, that choice is controversial since technically the underlying
drhcb15f352011-12-23 01:04:17 +00003956** file system does not always provide powersafe overwrites. (In other
3957** words, after a power-loss event, parts of the file that were never
3958** written might end up being altered.) However, non-PSOW behavior is very,
3959** very rare. And asserting PSOW makes a large reduction in the amount
3960** of required I/O for journaling, since a lot of padding is eliminated.
3961** Hence, while POWERSAFE_OVERWRITE is on by default, there is a file-control
3962** available to turn it off and URI query parameter available to turn it off.
danielk197790949c22007-08-17 16:50:38 +00003963*/
drhf12b3f62011-12-21 14:42:29 +00003964static int unixDeviceCharacteristics(sqlite3_file *id){
3965 unixFile *p = (unixFile*)id;
drh537dddf2012-10-26 13:46:24 +00003966 int rc = 0;
3967#ifdef __QNXNTO__
3968 if( p->sectorSize==0 ) unixSectorSize(id);
3969 rc = p->deviceCharacteristics;
3970#endif
drhcb15f352011-12-23 01:04:17 +00003971 if( p->ctrlFlags & UNIXFILE_PSOW ){
drh537dddf2012-10-26 13:46:24 +00003972 rc |= SQLITE_IOCAP_POWERSAFE_OVERWRITE;
drhcb15f352011-12-23 01:04:17 +00003973 }
drh537dddf2012-10-26 13:46:24 +00003974 return rc;
danielk197762079062007-08-15 17:08:46 +00003975}
3976
dan702eec12014-06-23 10:04:58 +00003977#if !defined(SQLITE_OMIT_WAL) || SQLITE_MAX_MMAP_SIZE>0
drhd9e5c4f2010-05-12 18:01:39 +00003978
dan702eec12014-06-23 10:04:58 +00003979/*
3980** Return the system page size.
3981**
3982** This function should not be called directly by other code in this file.
3983** Instead, it should be called via macro osGetpagesize().
3984*/
3985static int unixGetpagesize(void){
drh8cd5b252015-03-02 22:06:43 +00003986#if OS_VXWORKS
3987 return 1024;
3988#elif defined(_BSD_SOURCE)
dan702eec12014-06-23 10:04:58 +00003989 return getpagesize();
3990#else
3991 return (int)sysconf(_SC_PAGESIZE);
3992#endif
3993}
3994
3995#endif /* !defined(SQLITE_OMIT_WAL) || SQLITE_MAX_MMAP_SIZE>0 */
3996
3997#ifndef SQLITE_OMIT_WAL
drhd9e5c4f2010-05-12 18:01:39 +00003998
3999/*
drhd91c68f2010-05-14 14:52:25 +00004000** Object used to represent an shared memory buffer.
4001**
4002** When multiple threads all reference the same wal-index, each thread
4003** has its own unixShm object, but they all point to a single instance
4004** of this unixShmNode object. In other words, each wal-index is opened
4005** only once per process.
4006**
4007** Each unixShmNode object is connected to a single unixInodeInfo object.
4008** We could coalesce this object into unixInodeInfo, but that would mean
4009** every open file that does not use shared memory (in other words, most
4010** open files) would have to carry around this extra information. So
4011** the unixInodeInfo object contains a pointer to this unixShmNode object
4012** and the unixShmNode object is created only when needed.
drhd9e5c4f2010-05-12 18:01:39 +00004013**
4014** unixMutexHeld() must be true when creating or destroying
4015** this object or while reading or writing the following fields:
4016**
4017** nRef
drhd9e5c4f2010-05-12 18:01:39 +00004018**
4019** The following fields are read-only after the object is created:
4020**
4021** fid
4022** zFilename
4023**
drhd91c68f2010-05-14 14:52:25 +00004024** Either unixShmNode.mutex must be held or unixShmNode.nRef==0 and
drhd9e5c4f2010-05-12 18:01:39 +00004025** unixMutexHeld() is true when reading or writing any other field
4026** in this structure.
drhd9e5c4f2010-05-12 18:01:39 +00004027*/
drhd91c68f2010-05-14 14:52:25 +00004028struct unixShmNode {
4029 unixInodeInfo *pInode; /* unixInodeInfo that owns this SHM node */
drhd9e5c4f2010-05-12 18:01:39 +00004030 sqlite3_mutex *mutex; /* Mutex to access this object */
drhd9e5c4f2010-05-12 18:01:39 +00004031 char *zFilename; /* Name of the mmapped file */
4032 int h; /* Open file descriptor */
dan18801912010-06-14 14:07:50 +00004033 int szRegion; /* Size of shared-memory regions */
drh66dfec8b2011-06-01 20:01:49 +00004034 u16 nRegion; /* Size of array apRegion */
4035 u8 isReadonly; /* True if read-only */
dan18801912010-06-14 14:07:50 +00004036 char **apRegion; /* Array of mapped shared-memory regions */
drhd9e5c4f2010-05-12 18:01:39 +00004037 int nRef; /* Number of unixShm objects pointing to this */
4038 unixShm *pFirst; /* All unixShm objects pointing to this */
drhd9e5c4f2010-05-12 18:01:39 +00004039#ifdef SQLITE_DEBUG
4040 u8 exclMask; /* Mask of exclusive locks held */
4041 u8 sharedMask; /* Mask of shared locks held */
4042 u8 nextShmId; /* Next available unixShm.id value */
4043#endif
4044};
4045
4046/*
drhd9e5c4f2010-05-12 18:01:39 +00004047** Structure used internally by this VFS to record the state of an
4048** open shared memory connection.
4049**
drhd91c68f2010-05-14 14:52:25 +00004050** The following fields are initialized when this object is created and
4051** are read-only thereafter:
drhd9e5c4f2010-05-12 18:01:39 +00004052**
drhd91c68f2010-05-14 14:52:25 +00004053** unixShm.pFile
4054** unixShm.id
4055**
4056** All other fields are read/write. The unixShm.pFile->mutex must be held
4057** while accessing any read/write fields.
drhd9e5c4f2010-05-12 18:01:39 +00004058*/
4059struct unixShm {
drhd91c68f2010-05-14 14:52:25 +00004060 unixShmNode *pShmNode; /* The underlying unixShmNode object */
4061 unixShm *pNext; /* Next unixShm with the same unixShmNode */
drhd91c68f2010-05-14 14:52:25 +00004062 u8 hasMutex; /* True if holding the unixShmNode mutex */
drhfd532312011-08-31 18:35:34 +00004063 u8 id; /* Id of this connection within its unixShmNode */
drh73b64e42010-05-30 19:55:15 +00004064 u16 sharedMask; /* Mask of shared locks held */
4065 u16 exclMask; /* Mask of exclusive locks held */
drhd9e5c4f2010-05-12 18:01:39 +00004066};
4067
4068/*
drhd9e5c4f2010-05-12 18:01:39 +00004069** Constants used for locking
4070*/
drhbd9676c2010-06-23 17:58:38 +00004071#define UNIX_SHM_BASE ((22+SQLITE_SHM_NLOCK)*4) /* first lock byte */
drh42224412010-05-31 14:28:25 +00004072#define UNIX_SHM_DMS (UNIX_SHM_BASE+SQLITE_SHM_NLOCK) /* deadman switch */
drhd9e5c4f2010-05-12 18:01:39 +00004073
drhd9e5c4f2010-05-12 18:01:39 +00004074/*
drh73b64e42010-05-30 19:55:15 +00004075** Apply posix advisory locks for all bytes from ofst through ofst+n-1.
drhd9e5c4f2010-05-12 18:01:39 +00004076**
4077** Locks block if the mask is exactly UNIX_SHM_C and are non-blocking
4078** otherwise.
4079*/
4080static int unixShmSystemLock(
drhbbf76ee2015-03-10 20:22:35 +00004081 unixFile *pFile, /* Open connection to the WAL file */
drhd91c68f2010-05-14 14:52:25 +00004082 int lockType, /* F_UNLCK, F_RDLCK, or F_WRLCK */
drh73b64e42010-05-30 19:55:15 +00004083 int ofst, /* First byte of the locking range */
4084 int n /* Number of bytes to lock */
drhd9e5c4f2010-05-12 18:01:39 +00004085){
drhbbf76ee2015-03-10 20:22:35 +00004086 unixShmNode *pShmNode; /* Apply locks to this open shared-memory segment */
4087 struct flock f; /* The posix advisory locking structure */
4088 int rc = SQLITE_OK; /* Result code form fcntl() */
drhd9e5c4f2010-05-12 18:01:39 +00004089
drhd91c68f2010-05-14 14:52:25 +00004090 /* Access to the unixShmNode object is serialized by the caller */
drhbbf76ee2015-03-10 20:22:35 +00004091 pShmNode = pFile->pInode->pShmNode;
drhd91c68f2010-05-14 14:52:25 +00004092 assert( sqlite3_mutex_held(pShmNode->mutex) || pShmNode->nRef==0 );
drhd9e5c4f2010-05-12 18:01:39 +00004093
drh73b64e42010-05-30 19:55:15 +00004094 /* Shared locks never span more than one byte */
4095 assert( n==1 || lockType!=F_RDLCK );
4096
4097 /* Locks are within range */
drhaf19f172015-12-02 17:40:13 +00004098 assert( n>=1 && n<=SQLITE_SHM_NLOCK );
drh73b64e42010-05-30 19:55:15 +00004099
drh3cb93392011-03-12 18:10:44 +00004100 if( pShmNode->h>=0 ){
4101 /* Initialize the locking parameters */
4102 memset(&f, 0, sizeof(f));
4103 f.l_type = lockType;
4104 f.l_whence = SEEK_SET;
4105 f.l_start = ofst;
4106 f.l_len = n;
drhd9e5c4f2010-05-12 18:01:39 +00004107
drhdcfb9652015-12-02 00:05:26 +00004108 rc = osFcntl(pShmNode->h, F_SETLK, &f);
drh3cb93392011-03-12 18:10:44 +00004109 rc = (rc!=(-1)) ? SQLITE_OK : SQLITE_BUSY;
4110 }
drhd9e5c4f2010-05-12 18:01:39 +00004111
4112 /* Update the global lock state and do debug tracing */
4113#ifdef SQLITE_DEBUG
drh73b64e42010-05-30 19:55:15 +00004114 { u16 mask;
drhd9e5c4f2010-05-12 18:01:39 +00004115 OSTRACE(("SHM-LOCK "));
drh693e6712014-01-24 22:58:00 +00004116 mask = ofst>31 ? 0xffff : (1<<(ofst+n)) - (1<<ofst);
drhd9e5c4f2010-05-12 18:01:39 +00004117 if( rc==SQLITE_OK ){
4118 if( lockType==F_UNLCK ){
drh73b64e42010-05-30 19:55:15 +00004119 OSTRACE(("unlock %d ok", ofst));
4120 pShmNode->exclMask &= ~mask;
4121 pShmNode->sharedMask &= ~mask;
drhd9e5c4f2010-05-12 18:01:39 +00004122 }else if( lockType==F_RDLCK ){
drh73b64e42010-05-30 19:55:15 +00004123 OSTRACE(("read-lock %d ok", ofst));
4124 pShmNode->exclMask &= ~mask;
4125 pShmNode->sharedMask |= mask;
drhd9e5c4f2010-05-12 18:01:39 +00004126 }else{
4127 assert( lockType==F_WRLCK );
drh73b64e42010-05-30 19:55:15 +00004128 OSTRACE(("write-lock %d ok", ofst));
4129 pShmNode->exclMask |= mask;
4130 pShmNode->sharedMask &= ~mask;
drhd9e5c4f2010-05-12 18:01:39 +00004131 }
4132 }else{
4133 if( lockType==F_UNLCK ){
drh73b64e42010-05-30 19:55:15 +00004134 OSTRACE(("unlock %d failed", ofst));
drhd9e5c4f2010-05-12 18:01:39 +00004135 }else if( lockType==F_RDLCK ){
4136 OSTRACE(("read-lock failed"));
4137 }else{
4138 assert( lockType==F_WRLCK );
drh73b64e42010-05-30 19:55:15 +00004139 OSTRACE(("write-lock %d failed", ofst));
drhd9e5c4f2010-05-12 18:01:39 +00004140 }
4141 }
drh20e1f082010-05-31 16:10:12 +00004142 OSTRACE((" - afterwards %03x,%03x\n",
4143 pShmNode->sharedMask, pShmNode->exclMask));
drh73b64e42010-05-30 19:55:15 +00004144 }
drhd9e5c4f2010-05-12 18:01:39 +00004145#endif
4146
4147 return rc;
4148}
4149
dan781e34c2014-03-20 08:59:47 +00004150/*
dan781e34c2014-03-20 08:59:47 +00004151** Return the minimum number of 32KB shm regions that should be mapped at
4152** a time, assuming that each mapping must be an integer multiple of the
4153** current system page-size.
4154**
4155** Usually, this is 1. The exception seems to be systems that are configured
4156** to use 64KB pages - in this case each mapping must cover at least two
4157** shm regions.
4158*/
4159static int unixShmRegionPerMap(void){
4160 int shmsz = 32*1024; /* SHM region size */
danbc760632014-03-20 09:42:09 +00004161 int pgsz = osGetpagesize(); /* System page size */
dan781e34c2014-03-20 08:59:47 +00004162 assert( ((pgsz-1)&pgsz)==0 ); /* Page size must be a power of 2 */
4163 if( pgsz<shmsz ) return 1;
4164 return pgsz/shmsz;
4165}
drhd9e5c4f2010-05-12 18:01:39 +00004166
4167/*
drhd91c68f2010-05-14 14:52:25 +00004168** Purge the unixShmNodeList list of all entries with unixShmNode.nRef==0.
drhd9e5c4f2010-05-12 18:01:39 +00004169**
4170** This is not a VFS shared-memory method; it is a utility function called
4171** by VFS shared-memory methods.
4172*/
drhd91c68f2010-05-14 14:52:25 +00004173static void unixShmPurge(unixFile *pFd){
4174 unixShmNode *p = pFd->pInode->pShmNode;
drhd9e5c4f2010-05-12 18:01:39 +00004175 assert( unixMutexHeld() );
drhf3b1ed02015-12-02 13:11:03 +00004176 if( p && ALWAYS(p->nRef==0) ){
dan781e34c2014-03-20 08:59:47 +00004177 int nShmPerMap = unixShmRegionPerMap();
dan13a3cb82010-06-11 19:04:21 +00004178 int i;
drhd91c68f2010-05-14 14:52:25 +00004179 assert( p->pInode==pFd->pInode );
drhdf3aa162011-06-24 11:29:51 +00004180 sqlite3_mutex_free(p->mutex);
dan781e34c2014-03-20 08:59:47 +00004181 for(i=0; i<p->nRegion; i+=nShmPerMap){
drh3cb93392011-03-12 18:10:44 +00004182 if( p->h>=0 ){
drhd1ab8062013-03-25 20:50:25 +00004183 osMunmap(p->apRegion[i], p->szRegion);
drh3cb93392011-03-12 18:10:44 +00004184 }else{
4185 sqlite3_free(p->apRegion[i]);
4186 }
dan13a3cb82010-06-11 19:04:21 +00004187 }
dan18801912010-06-14 14:07:50 +00004188 sqlite3_free(p->apRegion);
drh0e9365c2011-03-02 02:08:13 +00004189 if( p->h>=0 ){
4190 robust_close(pFd, p->h, __LINE__);
4191 p->h = -1;
4192 }
drhd91c68f2010-05-14 14:52:25 +00004193 p->pInode->pShmNode = 0;
4194 sqlite3_free(p);
drhd9e5c4f2010-05-12 18:01:39 +00004195 }
4196}
4197
4198/*
danda9fe0c2010-07-13 18:44:03 +00004199** Open a shared-memory area associated with open database file pDbFd.
drh7234c6d2010-06-19 15:10:09 +00004200** This particular implementation uses mmapped files.
drhd9e5c4f2010-05-12 18:01:39 +00004201**
drh7234c6d2010-06-19 15:10:09 +00004202** The file used to implement shared-memory is in the same directory
4203** as the open database file and has the same name as the open database
4204** file with the "-shm" suffix added. For example, if the database file
4205** is "/home/user1/config.db" then the file that is created and mmapped
drha4ced192010-07-15 18:32:40 +00004206** for shared memory will be called "/home/user1/config.db-shm".
4207**
4208** Another approach to is to use files in /dev/shm or /dev/tmp or an
4209** some other tmpfs mount. But if a file in a different directory
4210** from the database file is used, then differing access permissions
4211** or a chroot() might cause two different processes on the same
4212** database to end up using different files for shared memory -
4213** meaning that their memory would not really be shared - resulting
4214** in database corruption. Nevertheless, this tmpfs file usage
4215** can be enabled at compile-time using -DSQLITE_SHM_DIRECTORY="/dev/shm"
4216** or the equivalent. The use of the SQLITE_SHM_DIRECTORY compile-time
4217** option results in an incompatible build of SQLite; builds of SQLite
4218** that with differing SQLITE_SHM_DIRECTORY settings attempt to use the
4219** same database file at the same time, database corruption will likely
4220** result. The SQLITE_SHM_DIRECTORY compile-time option is considered
4221** "unsupported" and may go away in a future SQLite release.
drhd9e5c4f2010-05-12 18:01:39 +00004222**
4223** When opening a new shared-memory file, if no other instances of that
4224** file are currently open, in this process or in other processes, then
4225** the file must be truncated to zero length or have its header cleared.
drh3cb93392011-03-12 18:10:44 +00004226**
4227** If the original database file (pDbFd) is using the "unix-excl" VFS
4228** that means that an exclusive lock is held on the database file and
4229** that no other processes are able to read or write the database. In
4230** that case, we do not really need shared memory. No shared memory
4231** file is created. The shared memory will be simulated with heap memory.
drhd9e5c4f2010-05-12 18:01:39 +00004232*/
danda9fe0c2010-07-13 18:44:03 +00004233static int unixOpenSharedMemory(unixFile *pDbFd){
4234 struct unixShm *p = 0; /* The connection to be opened */
4235 struct unixShmNode *pShmNode; /* The underlying mmapped file */
4236 int rc; /* Result code */
4237 unixInodeInfo *pInode; /* The inode of fd */
4238 char *zShmFilename; /* Name of the file used for SHM */
4239 int nShmFilename; /* Size of the SHM filename in bytes */
drhd9e5c4f2010-05-12 18:01:39 +00004240
danda9fe0c2010-07-13 18:44:03 +00004241 /* Allocate space for the new unixShm object. */
drhf3cdcdc2015-04-29 16:50:28 +00004242 p = sqlite3_malloc64( sizeof(*p) );
mistachkinfad30392016-02-13 23:43:46 +00004243 if( p==0 ) return SQLITE_NOMEM_BKPT;
drhd9e5c4f2010-05-12 18:01:39 +00004244 memset(p, 0, sizeof(*p));
drhd9e5c4f2010-05-12 18:01:39 +00004245 assert( pDbFd->pShm==0 );
drhd9e5c4f2010-05-12 18:01:39 +00004246
danda9fe0c2010-07-13 18:44:03 +00004247 /* Check to see if a unixShmNode object already exists. Reuse an existing
4248 ** one if present. Create a new one if necessary.
drhd9e5c4f2010-05-12 18:01:39 +00004249 */
4250 unixEnterMutex();
drh8b3cf822010-06-01 21:02:51 +00004251 pInode = pDbFd->pInode;
4252 pShmNode = pInode->pShmNode;
drhd91c68f2010-05-14 14:52:25 +00004253 if( pShmNode==0 ){
danddb0ac42010-07-14 14:48:58 +00004254 struct stat sStat; /* fstat() info for database file */
drh4bf66fd2015-02-19 02:43:02 +00004255#ifndef SQLITE_SHM_DIRECTORY
4256 const char *zBasePath = pDbFd->zPath;
4257#endif
danddb0ac42010-07-14 14:48:58 +00004258
4259 /* Call fstat() to figure out the permissions on the database file. If
4260 ** a new *-shm file is created, an attempt will be made to create it
drh8c815d12012-02-13 20:16:37 +00004261 ** with the same permissions.
danddb0ac42010-07-14 14:48:58 +00004262 */
drhf3b1ed02015-12-02 13:11:03 +00004263 if( osFstat(pDbFd->h, &sStat) ){
danddb0ac42010-07-14 14:48:58 +00004264 rc = SQLITE_IOERR_FSTAT;
4265 goto shm_open_err;
4266 }
4267
drha4ced192010-07-15 18:32:40 +00004268#ifdef SQLITE_SHM_DIRECTORY
drh52bcde02012-01-03 14:50:45 +00004269 nShmFilename = sizeof(SQLITE_SHM_DIRECTORY) + 31;
drha4ced192010-07-15 18:32:40 +00004270#else
drh4bf66fd2015-02-19 02:43:02 +00004271 nShmFilename = 6 + (int)strlen(zBasePath);
drha4ced192010-07-15 18:32:40 +00004272#endif
drhf3cdcdc2015-04-29 16:50:28 +00004273 pShmNode = sqlite3_malloc64( sizeof(*pShmNode) + nShmFilename );
drhd91c68f2010-05-14 14:52:25 +00004274 if( pShmNode==0 ){
mistachkinfad30392016-02-13 23:43:46 +00004275 rc = SQLITE_NOMEM_BKPT;
drhd9e5c4f2010-05-12 18:01:39 +00004276 goto shm_open_err;
4277 }
drh9cb5a0d2012-01-05 21:19:54 +00004278 memset(pShmNode, 0, sizeof(*pShmNode)+nShmFilename);
drh7234c6d2010-06-19 15:10:09 +00004279 zShmFilename = pShmNode->zFilename = (char*)&pShmNode[1];
drha4ced192010-07-15 18:32:40 +00004280#ifdef SQLITE_SHM_DIRECTORY
4281 sqlite3_snprintf(nShmFilename, zShmFilename,
4282 SQLITE_SHM_DIRECTORY "/sqlite-shm-%x-%x",
4283 (u32)sStat.st_ino, (u32)sStat.st_dev);
4284#else
drh4bf66fd2015-02-19 02:43:02 +00004285 sqlite3_snprintf(nShmFilename, zShmFilename, "%s-shm", zBasePath);
drh81cc5162011-05-17 20:36:21 +00004286 sqlite3FileSuffix3(pDbFd->zPath, zShmFilename);
drha4ced192010-07-15 18:32:40 +00004287#endif
drhd91c68f2010-05-14 14:52:25 +00004288 pShmNode->h = -1;
4289 pDbFd->pInode->pShmNode = pShmNode;
4290 pShmNode->pInode = pDbFd->pInode;
4291 pShmNode->mutex = sqlite3_mutex_alloc(SQLITE_MUTEX_FAST);
4292 if( pShmNode->mutex==0 ){
mistachkinfad30392016-02-13 23:43:46 +00004293 rc = SQLITE_NOMEM_BKPT;
drhd91c68f2010-05-14 14:52:25 +00004294 goto shm_open_err;
4295 }
drhd9e5c4f2010-05-12 18:01:39 +00004296
drh3cb93392011-03-12 18:10:44 +00004297 if( pInode->bProcessLock==0 ){
drh3ec4a0c2011-10-11 18:18:54 +00004298 int openFlags = O_RDWR | O_CREAT;
drh92913722011-12-23 00:07:33 +00004299 if( sqlite3_uri_boolean(pDbFd->zPath, "readonly_shm", 0) ){
drh3ec4a0c2011-10-11 18:18:54 +00004300 openFlags = O_RDONLY;
4301 pShmNode->isReadonly = 1;
4302 }
4303 pShmNode->h = robust_open(zShmFilename, openFlags, (sStat.st_mode&0777));
drh3cb93392011-03-12 18:10:44 +00004304 if( pShmNode->h<0 ){
drhc96d1e72012-02-11 18:51:34 +00004305 rc = unixLogError(SQLITE_CANTOPEN_BKPT, "open", zShmFilename);
4306 goto shm_open_err;
drhd9e5c4f2010-05-12 18:01:39 +00004307 }
drhac7c3ac2012-02-11 19:23:48 +00004308
4309 /* If this process is running as root, make sure that the SHM file
4310 ** is owned by the same user that owns the original database. Otherwise,
drhed466822012-05-31 13:10:49 +00004311 ** the original owner will not be able to connect.
drhac7c3ac2012-02-11 19:23:48 +00004312 */
drh6226ca22015-11-24 15:06:28 +00004313 robustFchown(pShmNode->h, sStat.st_uid, sStat.st_gid);
drh3cb93392011-03-12 18:10:44 +00004314
4315 /* Check to see if another process is holding the dead-man switch.
drh66dfec8b2011-06-01 20:01:49 +00004316 ** If not, truncate the file to zero length.
4317 */
4318 rc = SQLITE_OK;
drhbbf76ee2015-03-10 20:22:35 +00004319 if( unixShmSystemLock(pDbFd, F_WRLCK, UNIX_SHM_DMS, 1)==SQLITE_OK ){
drh66dfec8b2011-06-01 20:01:49 +00004320 if( robust_ftruncate(pShmNode->h, 0) ){
4321 rc = unixLogError(SQLITE_IOERR_SHMOPEN, "ftruncate", zShmFilename);
drh3cb93392011-03-12 18:10:44 +00004322 }
4323 }
drh66dfec8b2011-06-01 20:01:49 +00004324 if( rc==SQLITE_OK ){
drhbbf76ee2015-03-10 20:22:35 +00004325 rc = unixShmSystemLock(pDbFd, F_RDLCK, UNIX_SHM_DMS, 1);
drh66dfec8b2011-06-01 20:01:49 +00004326 }
4327 if( rc ) goto shm_open_err;
drhd9e5c4f2010-05-12 18:01:39 +00004328 }
drhd9e5c4f2010-05-12 18:01:39 +00004329 }
4330
drhd91c68f2010-05-14 14:52:25 +00004331 /* Make the new connection a child of the unixShmNode */
4332 p->pShmNode = pShmNode;
drhd9e5c4f2010-05-12 18:01:39 +00004333#ifdef SQLITE_DEBUG
drhd91c68f2010-05-14 14:52:25 +00004334 p->id = pShmNode->nextShmId++;
drhd9e5c4f2010-05-12 18:01:39 +00004335#endif
drhd91c68f2010-05-14 14:52:25 +00004336 pShmNode->nRef++;
drhd9e5c4f2010-05-12 18:01:39 +00004337 pDbFd->pShm = p;
4338 unixLeaveMutex();
dan0668f592010-07-20 18:59:00 +00004339
4340 /* The reference count on pShmNode has already been incremented under
4341 ** the cover of the unixEnterMutex() mutex and the pointer from the
4342 ** new (struct unixShm) object to the pShmNode has been set. All that is
4343 ** left to do is to link the new object into the linked list starting
4344 ** at pShmNode->pFirst. This must be done while holding the pShmNode->mutex
4345 ** mutex.
4346 */
4347 sqlite3_mutex_enter(pShmNode->mutex);
4348 p->pNext = pShmNode->pFirst;
4349 pShmNode->pFirst = p;
4350 sqlite3_mutex_leave(pShmNode->mutex);
drhd9e5c4f2010-05-12 18:01:39 +00004351 return SQLITE_OK;
4352
4353 /* Jump here on any error */
4354shm_open_err:
drhd91c68f2010-05-14 14:52:25 +00004355 unixShmPurge(pDbFd); /* This call frees pShmNode if required */
drhd9e5c4f2010-05-12 18:01:39 +00004356 sqlite3_free(p);
drhd9e5c4f2010-05-12 18:01:39 +00004357 unixLeaveMutex();
4358 return rc;
4359}
4360
4361/*
danda9fe0c2010-07-13 18:44:03 +00004362** This function is called to obtain a pointer to region iRegion of the
4363** shared-memory associated with the database file fd. Shared-memory regions
4364** are numbered starting from zero. Each shared-memory region is szRegion
4365** bytes in size.
4366**
4367** If an error occurs, an error code is returned and *pp is set to NULL.
4368**
4369** Otherwise, if the bExtend parameter is 0 and the requested shared-memory
4370** region has not been allocated (by any client, including one running in a
4371** separate process), then *pp is set to NULL and SQLITE_OK returned. If
4372** bExtend is non-zero and the requested shared-memory region has not yet
4373** been allocated, it is allocated by this function.
4374**
4375** If the shared-memory region has already been allocated or is allocated by
4376** this call as described above, then it is mapped into this processes
4377** address space (if it is not already), *pp is set to point to the mapped
4378** memory and SQLITE_OK returned.
drhd9e5c4f2010-05-12 18:01:39 +00004379*/
danda9fe0c2010-07-13 18:44:03 +00004380static int unixShmMap(
4381 sqlite3_file *fd, /* Handle open on database file */
4382 int iRegion, /* Region to retrieve */
4383 int szRegion, /* Size of regions */
4384 int bExtend, /* True to extend file if necessary */
4385 void volatile **pp /* OUT: Mapped memory */
drhd9e5c4f2010-05-12 18:01:39 +00004386){
danda9fe0c2010-07-13 18:44:03 +00004387 unixFile *pDbFd = (unixFile*)fd;
4388 unixShm *p;
4389 unixShmNode *pShmNode;
4390 int rc = SQLITE_OK;
dan781e34c2014-03-20 08:59:47 +00004391 int nShmPerMap = unixShmRegionPerMap();
4392 int nReqRegion;
drhd9e5c4f2010-05-12 18:01:39 +00004393
danda9fe0c2010-07-13 18:44:03 +00004394 /* If the shared-memory file has not yet been opened, open it now. */
4395 if( pDbFd->pShm==0 ){
4396 rc = unixOpenSharedMemory(pDbFd);
4397 if( rc!=SQLITE_OK ) return rc;
drhd9e5c4f2010-05-12 18:01:39 +00004398 }
drhd9e5c4f2010-05-12 18:01:39 +00004399
danda9fe0c2010-07-13 18:44:03 +00004400 p = pDbFd->pShm;
4401 pShmNode = p->pShmNode;
4402 sqlite3_mutex_enter(pShmNode->mutex);
4403 assert( szRegion==pShmNode->szRegion || pShmNode->nRegion==0 );
drh3cb93392011-03-12 18:10:44 +00004404 assert( pShmNode->pInode==pDbFd->pInode );
4405 assert( pShmNode->h>=0 || pDbFd->pInode->bProcessLock==1 );
4406 assert( pShmNode->h<0 || pDbFd->pInode->bProcessLock==0 );
danda9fe0c2010-07-13 18:44:03 +00004407
dan781e34c2014-03-20 08:59:47 +00004408 /* Minimum number of regions required to be mapped. */
4409 nReqRegion = ((iRegion+nShmPerMap) / nShmPerMap) * nShmPerMap;
4410
4411 if( pShmNode->nRegion<nReqRegion ){
danda9fe0c2010-07-13 18:44:03 +00004412 char **apNew; /* New apRegion[] array */
dan781e34c2014-03-20 08:59:47 +00004413 int nByte = nReqRegion*szRegion; /* Minimum required file size */
danda9fe0c2010-07-13 18:44:03 +00004414 struct stat sStat; /* Used by fstat() */
4415
4416 pShmNode->szRegion = szRegion;
4417
drh3cb93392011-03-12 18:10:44 +00004418 if( pShmNode->h>=0 ){
4419 /* The requested region is not mapped into this processes address space.
4420 ** Check to see if it has been allocated (i.e. if the wal-index file is
4421 ** large enough to contain the requested region).
danda9fe0c2010-07-13 18:44:03 +00004422 */
drh3cb93392011-03-12 18:10:44 +00004423 if( osFstat(pShmNode->h, &sStat) ){
4424 rc = SQLITE_IOERR_SHMSIZE;
danda9fe0c2010-07-13 18:44:03 +00004425 goto shmpage_out;
4426 }
drh3cb93392011-03-12 18:10:44 +00004427
4428 if( sStat.st_size<nByte ){
4429 /* The requested memory region does not exist. If bExtend is set to
4430 ** false, exit early. *pp will be set to NULL and SQLITE_OK returned.
drh3cb93392011-03-12 18:10:44 +00004431 */
dan47a2b4a2013-04-26 16:09:29 +00004432 if( !bExtend ){
drh0fbb50e2012-11-13 10:54:12 +00004433 goto shmpage_out;
4434 }
dan47a2b4a2013-04-26 16:09:29 +00004435
4436 /* Alternatively, if bExtend is true, extend the file. Do this by
4437 ** writing a single byte to the end of each (OS) page being
4438 ** allocated or extended. Technically, we need only write to the
4439 ** last page in order to extend the file. But writing to all new
4440 ** pages forces the OS to allocate them immediately, which reduces
4441 ** the chances of SIGBUS while accessing the mapped region later on.
4442 */
4443 else{
4444 static const int pgsz = 4096;
4445 int iPg;
4446
4447 /* Write to the last byte of each newly allocated or extended page */
4448 assert( (nByte % pgsz)==0 );
4449 for(iPg=(sStat.st_size/pgsz); iPg<(nByte/pgsz); iPg++){
drhe1818ec2015-12-01 16:21:35 +00004450 int x = 0;
4451 if( seekAndWriteFd(pShmNode->h, iPg*pgsz + pgsz-1, "", 1, &x)!=1 ){
dan47a2b4a2013-04-26 16:09:29 +00004452 const char *zFile = pShmNode->zFilename;
4453 rc = unixLogError(SQLITE_IOERR_SHMSIZE, "write", zFile);
4454 goto shmpage_out;
4455 }
4456 }
drh3cb93392011-03-12 18:10:44 +00004457 }
4458 }
danda9fe0c2010-07-13 18:44:03 +00004459 }
4460
4461 /* Map the requested memory region into this processes address space. */
4462 apNew = (char **)sqlite3_realloc(
dan781e34c2014-03-20 08:59:47 +00004463 pShmNode->apRegion, nReqRegion*sizeof(char *)
danda9fe0c2010-07-13 18:44:03 +00004464 );
4465 if( !apNew ){
mistachkinfad30392016-02-13 23:43:46 +00004466 rc = SQLITE_IOERR_NOMEM_BKPT;
danda9fe0c2010-07-13 18:44:03 +00004467 goto shmpage_out;
4468 }
4469 pShmNode->apRegion = apNew;
dan781e34c2014-03-20 08:59:47 +00004470 while( pShmNode->nRegion<nReqRegion ){
4471 int nMap = szRegion*nShmPerMap;
4472 int i;
drh3cb93392011-03-12 18:10:44 +00004473 void *pMem;
4474 if( pShmNode->h>=0 ){
dan781e34c2014-03-20 08:59:47 +00004475 pMem = osMmap(0, nMap,
drh66dfec8b2011-06-01 20:01:49 +00004476 pShmNode->isReadonly ? PROT_READ : PROT_READ|PROT_WRITE,
drh5a05be12012-10-09 18:51:44 +00004477 MAP_SHARED, pShmNode->h, szRegion*(i64)pShmNode->nRegion
drh3cb93392011-03-12 18:10:44 +00004478 );
4479 if( pMem==MAP_FAILED ){
drh50990db2011-04-13 20:26:13 +00004480 rc = unixLogError(SQLITE_IOERR_SHMMAP, "mmap", pShmNode->zFilename);
drh3cb93392011-03-12 18:10:44 +00004481 goto shmpage_out;
4482 }
4483 }else{
drhf3cdcdc2015-04-29 16:50:28 +00004484 pMem = sqlite3_malloc64(szRegion);
drh3cb93392011-03-12 18:10:44 +00004485 if( pMem==0 ){
mistachkinfad30392016-02-13 23:43:46 +00004486 rc = SQLITE_NOMEM_BKPT;
drh3cb93392011-03-12 18:10:44 +00004487 goto shmpage_out;
4488 }
4489 memset(pMem, 0, szRegion);
danda9fe0c2010-07-13 18:44:03 +00004490 }
dan781e34c2014-03-20 08:59:47 +00004491
4492 for(i=0; i<nShmPerMap; i++){
4493 pShmNode->apRegion[pShmNode->nRegion+i] = &((char*)pMem)[szRegion*i];
4494 }
4495 pShmNode->nRegion += nShmPerMap;
danda9fe0c2010-07-13 18:44:03 +00004496 }
4497 }
4498
4499shmpage_out:
4500 if( pShmNode->nRegion>iRegion ){
4501 *pp = pShmNode->apRegion[iRegion];
4502 }else{
4503 *pp = 0;
4504 }
drh66dfec8b2011-06-01 20:01:49 +00004505 if( pShmNode->isReadonly && rc==SQLITE_OK ) rc = SQLITE_READONLY;
danda9fe0c2010-07-13 18:44:03 +00004506 sqlite3_mutex_leave(pShmNode->mutex);
4507 return rc;
drhd9e5c4f2010-05-12 18:01:39 +00004508}
4509
4510/*
drhd9e5c4f2010-05-12 18:01:39 +00004511** Change the lock state for a shared-memory segment.
drh15d68092010-05-31 16:56:14 +00004512**
4513** Note that the relationship between SHAREd and EXCLUSIVE locks is a little
4514** different here than in posix. In xShmLock(), one can go from unlocked
4515** to shared and back or from unlocked to exclusive and back. But one may
4516** not go from shared to exclusive or from exclusive to shared.
drhd9e5c4f2010-05-12 18:01:39 +00004517*/
4518static int unixShmLock(
4519 sqlite3_file *fd, /* Database file holding the shared memory */
drh73b64e42010-05-30 19:55:15 +00004520 int ofst, /* First lock to acquire or release */
4521 int n, /* Number of locks to acquire or release */
4522 int flags /* What to do with the lock */
drhd9e5c4f2010-05-12 18:01:39 +00004523){
drh73b64e42010-05-30 19:55:15 +00004524 unixFile *pDbFd = (unixFile*)fd; /* Connection holding shared memory */
4525 unixShm *p = pDbFd->pShm; /* The shared memory being locked */
4526 unixShm *pX; /* For looping over all siblings */
4527 unixShmNode *pShmNode = p->pShmNode; /* The underlying file iNode */
4528 int rc = SQLITE_OK; /* Result code */
4529 u16 mask; /* Mask of locks to take or release */
drhd9e5c4f2010-05-12 18:01:39 +00004530
drhd91c68f2010-05-14 14:52:25 +00004531 assert( pShmNode==pDbFd->pInode->pShmNode );
4532 assert( pShmNode->pInode==pDbFd->pInode );
drhc99597c2010-05-31 01:41:15 +00004533 assert( ofst>=0 && ofst+n<=SQLITE_SHM_NLOCK );
drh73b64e42010-05-30 19:55:15 +00004534 assert( n>=1 );
4535 assert( flags==(SQLITE_SHM_LOCK | SQLITE_SHM_SHARED)
4536 || flags==(SQLITE_SHM_LOCK | SQLITE_SHM_EXCLUSIVE)
4537 || flags==(SQLITE_SHM_UNLOCK | SQLITE_SHM_SHARED)
4538 || flags==(SQLITE_SHM_UNLOCK | SQLITE_SHM_EXCLUSIVE) );
4539 assert( n==1 || (flags & SQLITE_SHM_EXCLUSIVE)!=0 );
drh3cb93392011-03-12 18:10:44 +00004540 assert( pShmNode->h>=0 || pDbFd->pInode->bProcessLock==1 );
4541 assert( pShmNode->h<0 || pDbFd->pInode->bProcessLock==0 );
drhd91c68f2010-05-14 14:52:25 +00004542
drhc99597c2010-05-31 01:41:15 +00004543 mask = (1<<(ofst+n)) - (1<<ofst);
drh73b64e42010-05-30 19:55:15 +00004544 assert( n>1 || mask==(1<<ofst) );
drhd91c68f2010-05-14 14:52:25 +00004545 sqlite3_mutex_enter(pShmNode->mutex);
drh73b64e42010-05-30 19:55:15 +00004546 if( flags & SQLITE_SHM_UNLOCK ){
4547 u16 allMask = 0; /* Mask of locks held by siblings */
4548
4549 /* See if any siblings hold this same lock */
4550 for(pX=pShmNode->pFirst; pX; pX=pX->pNext){
4551 if( pX==p ) continue;
4552 assert( (pX->exclMask & (p->exclMask|p->sharedMask))==0 );
4553 allMask |= pX->sharedMask;
4554 }
4555
4556 /* Unlock the system-level locks */
4557 if( (mask & allMask)==0 ){
drhbbf76ee2015-03-10 20:22:35 +00004558 rc = unixShmSystemLock(pDbFd, F_UNLCK, ofst+UNIX_SHM_BASE, n);
drh73b64e42010-05-30 19:55:15 +00004559 }else{
drhd9e5c4f2010-05-12 18:01:39 +00004560 rc = SQLITE_OK;
drhd9e5c4f2010-05-12 18:01:39 +00004561 }
drh73b64e42010-05-30 19:55:15 +00004562
4563 /* Undo the local locks */
4564 if( rc==SQLITE_OK ){
4565 p->exclMask &= ~mask;
4566 p->sharedMask &= ~mask;
4567 }
4568 }else if( flags & SQLITE_SHM_SHARED ){
4569 u16 allShared = 0; /* Union of locks held by connections other than "p" */
4570
4571 /* Find out which shared locks are already held by sibling connections.
4572 ** If any sibling already holds an exclusive lock, go ahead and return
4573 ** SQLITE_BUSY.
4574 */
4575 for(pX=pShmNode->pFirst; pX; pX=pX->pNext){
drh73b64e42010-05-30 19:55:15 +00004576 if( (pX->exclMask & mask)!=0 ){
drhd9e5c4f2010-05-12 18:01:39 +00004577 rc = SQLITE_BUSY;
drh73b64e42010-05-30 19:55:15 +00004578 break;
4579 }
4580 allShared |= pX->sharedMask;
4581 }
4582
4583 /* Get shared locks at the system level, if necessary */
4584 if( rc==SQLITE_OK ){
4585 if( (allShared & mask)==0 ){
drhbbf76ee2015-03-10 20:22:35 +00004586 rc = unixShmSystemLock(pDbFd, F_RDLCK, ofst+UNIX_SHM_BASE, n);
drhd9e5c4f2010-05-12 18:01:39 +00004587 }else{
drh73b64e42010-05-30 19:55:15 +00004588 rc = SQLITE_OK;
drhd9e5c4f2010-05-12 18:01:39 +00004589 }
drhd9e5c4f2010-05-12 18:01:39 +00004590 }
drh73b64e42010-05-30 19:55:15 +00004591
4592 /* Get the local shared locks */
4593 if( rc==SQLITE_OK ){
4594 p->sharedMask |= mask;
4595 }
4596 }else{
4597 /* Make sure no sibling connections hold locks that will block this
4598 ** lock. If any do, return SQLITE_BUSY right away.
4599 */
4600 for(pX=pShmNode->pFirst; pX; pX=pX->pNext){
drh73b64e42010-05-30 19:55:15 +00004601 if( (pX->exclMask & mask)!=0 || (pX->sharedMask & mask)!=0 ){
4602 rc = SQLITE_BUSY;
4603 break;
4604 }
4605 }
4606
4607 /* Get the exclusive locks at the system level. Then if successful
4608 ** also mark the local connection as being locked.
4609 */
4610 if( rc==SQLITE_OK ){
drhbbf76ee2015-03-10 20:22:35 +00004611 rc = unixShmSystemLock(pDbFd, F_WRLCK, ofst+UNIX_SHM_BASE, n);
drhd9e5c4f2010-05-12 18:01:39 +00004612 if( rc==SQLITE_OK ){
drh15d68092010-05-31 16:56:14 +00004613 assert( (p->sharedMask & mask)==0 );
drh73b64e42010-05-30 19:55:15 +00004614 p->exclMask |= mask;
drhd9e5c4f2010-05-12 18:01:39 +00004615 }
drhd9e5c4f2010-05-12 18:01:39 +00004616 }
4617 }
drhd91c68f2010-05-14 14:52:25 +00004618 sqlite3_mutex_leave(pShmNode->mutex);
drh20e1f082010-05-31 16:10:12 +00004619 OSTRACE(("SHM-LOCK shmid-%d, pid-%d got %03x,%03x\n",
drh5ac93652015-03-21 20:59:43 +00004620 p->id, osGetpid(0), p->sharedMask, p->exclMask));
drhd9e5c4f2010-05-12 18:01:39 +00004621 return rc;
4622}
4623
drh286a2882010-05-20 23:51:06 +00004624/*
4625** Implement a memory barrier or memory fence on shared memory.
4626**
4627** All loads and stores begun before the barrier must complete before
4628** any load or store begun after the barrier.
4629*/
4630static void unixShmBarrier(
dan18801912010-06-14 14:07:50 +00004631 sqlite3_file *fd /* Database file holding the shared memory */
drh286a2882010-05-20 23:51:06 +00004632){
drhff828942010-06-26 21:34:06 +00004633 UNUSED_PARAMETER(fd);
drh22c733d2015-09-24 12:40:43 +00004634 sqlite3MemoryBarrier(); /* compiler-defined memory barrier */
4635 unixEnterMutex(); /* Also mutex, for redundancy */
drhb29ad852010-06-01 00:03:57 +00004636 unixLeaveMutex();
drh286a2882010-05-20 23:51:06 +00004637}
4638
dan18801912010-06-14 14:07:50 +00004639/*
danda9fe0c2010-07-13 18:44:03 +00004640** Close a connection to shared-memory. Delete the underlying
4641** storage if deleteFlag is true.
drhe11fedc2010-07-14 00:14:30 +00004642**
4643** If there is no shared memory associated with the connection then this
4644** routine is a harmless no-op.
dan18801912010-06-14 14:07:50 +00004645*/
danda9fe0c2010-07-13 18:44:03 +00004646static int unixShmUnmap(
4647 sqlite3_file *fd, /* The underlying database file */
4648 int deleteFlag /* Delete shared-memory if true */
dan13a3cb82010-06-11 19:04:21 +00004649){
danda9fe0c2010-07-13 18:44:03 +00004650 unixShm *p; /* The connection to be closed */
4651 unixShmNode *pShmNode; /* The underlying shared-memory file */
4652 unixShm **pp; /* For looping over sibling connections */
4653 unixFile *pDbFd; /* The underlying database file */
dan13a3cb82010-06-11 19:04:21 +00004654
danda9fe0c2010-07-13 18:44:03 +00004655 pDbFd = (unixFile*)fd;
4656 p = pDbFd->pShm;
4657 if( p==0 ) return SQLITE_OK;
4658 pShmNode = p->pShmNode;
4659
4660 assert( pShmNode==pDbFd->pInode->pShmNode );
4661 assert( pShmNode->pInode==pDbFd->pInode );
4662
4663 /* Remove connection p from the set of connections associated
4664 ** with pShmNode */
dan18801912010-06-14 14:07:50 +00004665 sqlite3_mutex_enter(pShmNode->mutex);
danda9fe0c2010-07-13 18:44:03 +00004666 for(pp=&pShmNode->pFirst; (*pp)!=p; pp = &(*pp)->pNext){}
4667 *pp = p->pNext;
dan13a3cb82010-06-11 19:04:21 +00004668
danda9fe0c2010-07-13 18:44:03 +00004669 /* Free the connection p */
4670 sqlite3_free(p);
4671 pDbFd->pShm = 0;
dan18801912010-06-14 14:07:50 +00004672 sqlite3_mutex_leave(pShmNode->mutex);
danda9fe0c2010-07-13 18:44:03 +00004673
4674 /* If pShmNode->nRef has reached 0, then close the underlying
4675 ** shared-memory file, too */
4676 unixEnterMutex();
4677 assert( pShmNode->nRef>0 );
4678 pShmNode->nRef--;
4679 if( pShmNode->nRef==0 ){
drh4bf66fd2015-02-19 02:43:02 +00004680 if( deleteFlag && pShmNode->h>=0 ){
4681 osUnlink(pShmNode->zFilename);
4682 }
danda9fe0c2010-07-13 18:44:03 +00004683 unixShmPurge(pDbFd);
4684 }
4685 unixLeaveMutex();
4686
4687 return SQLITE_OK;
dan13a3cb82010-06-11 19:04:21 +00004688}
drh286a2882010-05-20 23:51:06 +00004689
danda9fe0c2010-07-13 18:44:03 +00004690
drhd9e5c4f2010-05-12 18:01:39 +00004691#else
drh6b017cc2010-06-14 18:01:46 +00004692# define unixShmMap 0
danda9fe0c2010-07-13 18:44:03 +00004693# define unixShmLock 0
drh286a2882010-05-20 23:51:06 +00004694# define unixShmBarrier 0
danda9fe0c2010-07-13 18:44:03 +00004695# define unixShmUnmap 0
drhd9e5c4f2010-05-12 18:01:39 +00004696#endif /* #ifndef SQLITE_OMIT_WAL */
4697
mistachkine98844f2013-08-24 00:59:24 +00004698#if SQLITE_MAX_MMAP_SIZE>0
drh734c9862008-11-28 15:37:20 +00004699/*
danaef49d72013-03-25 16:28:54 +00004700** If it is currently memory mapped, unmap file pFd.
dand306e1a2013-03-20 18:25:49 +00004701*/
danf23da962013-03-23 21:00:41 +00004702static void unixUnmapfile(unixFile *pFd){
4703 assert( pFd->nFetchOut==0 );
4704 if( pFd->pMapRegion ){
drh9b4c59f2013-04-15 17:03:42 +00004705 osMunmap(pFd->pMapRegion, pFd->mmapSizeActual);
danf23da962013-03-23 21:00:41 +00004706 pFd->pMapRegion = 0;
4707 pFd->mmapSize = 0;
drh9b4c59f2013-04-15 17:03:42 +00004708 pFd->mmapSizeActual = 0;
danf23da962013-03-23 21:00:41 +00004709 }
4710}
dan5d8a1372013-03-19 19:28:06 +00004711
danaef49d72013-03-25 16:28:54 +00004712/*
dane6ecd662013-04-01 17:56:59 +00004713** Attempt to set the size of the memory mapping maintained by file
4714** descriptor pFd to nNew bytes. Any existing mapping is discarded.
4715**
4716** If successful, this function sets the following variables:
4717**
4718** unixFile.pMapRegion
4719** unixFile.mmapSize
drh9b4c59f2013-04-15 17:03:42 +00004720** unixFile.mmapSizeActual
dane6ecd662013-04-01 17:56:59 +00004721**
4722** If unsuccessful, an error message is logged via sqlite3_log() and
4723** the three variables above are zeroed. In this case SQLite should
4724** continue accessing the database using the xRead() and xWrite()
4725** methods.
4726*/
4727static void unixRemapfile(
4728 unixFile *pFd, /* File descriptor object */
4729 i64 nNew /* Required mapping size */
4730){
dan4ff7bc42013-04-02 12:04:09 +00004731 const char *zErr = "mmap";
dane6ecd662013-04-01 17:56:59 +00004732 int h = pFd->h; /* File descriptor open on db file */
4733 u8 *pOrig = (u8 *)pFd->pMapRegion; /* Pointer to current file mapping */
drh9b4c59f2013-04-15 17:03:42 +00004734 i64 nOrig = pFd->mmapSizeActual; /* Size of pOrig region in bytes */
dane6ecd662013-04-01 17:56:59 +00004735 u8 *pNew = 0; /* Location of new mapping */
4736 int flags = PROT_READ; /* Flags to pass to mmap() */
4737
4738 assert( pFd->nFetchOut==0 );
4739 assert( nNew>pFd->mmapSize );
drh9b4c59f2013-04-15 17:03:42 +00004740 assert( nNew<=pFd->mmapSizeMax );
dane6ecd662013-04-01 17:56:59 +00004741 assert( nNew>0 );
drh9b4c59f2013-04-15 17:03:42 +00004742 assert( pFd->mmapSizeActual>=pFd->mmapSize );
dan4ff7bc42013-04-02 12:04:09 +00004743 assert( MAP_FAILED!=0 );
dane6ecd662013-04-01 17:56:59 +00004744
danfe33e392015-11-17 20:56:06 +00004745#ifdef SQLITE_MMAP_READWRITE
dane6ecd662013-04-01 17:56:59 +00004746 if( (pFd->ctrlFlags & UNIXFILE_RDONLY)==0 ) flags |= PROT_WRITE;
danfe33e392015-11-17 20:56:06 +00004747#endif
dane6ecd662013-04-01 17:56:59 +00004748
4749 if( pOrig ){
dan781e34c2014-03-20 08:59:47 +00004750#if HAVE_MREMAP
4751 i64 nReuse = pFd->mmapSize;
4752#else
danbc760632014-03-20 09:42:09 +00004753 const int szSyspage = osGetpagesize();
dane6ecd662013-04-01 17:56:59 +00004754 i64 nReuse = (pFd->mmapSize & ~(szSyspage-1));
dan781e34c2014-03-20 08:59:47 +00004755#endif
dane6ecd662013-04-01 17:56:59 +00004756 u8 *pReq = &pOrig[nReuse];
4757
4758 /* Unmap any pages of the existing mapping that cannot be reused. */
4759 if( nReuse!=nOrig ){
4760 osMunmap(pReq, nOrig-nReuse);
4761 }
4762
4763#if HAVE_MREMAP
4764 pNew = osMremap(pOrig, nReuse, nNew, MREMAP_MAYMOVE);
dan4ff7bc42013-04-02 12:04:09 +00004765 zErr = "mremap";
dane6ecd662013-04-01 17:56:59 +00004766#else
4767 pNew = osMmap(pReq, nNew-nReuse, flags, MAP_SHARED, h, nReuse);
4768 if( pNew!=MAP_FAILED ){
4769 if( pNew!=pReq ){
4770 osMunmap(pNew, nNew - nReuse);
dan4ff7bc42013-04-02 12:04:09 +00004771 pNew = 0;
dane6ecd662013-04-01 17:56:59 +00004772 }else{
4773 pNew = pOrig;
4774 }
4775 }
4776#endif
4777
dan48ccef82013-04-02 20:55:01 +00004778 /* The attempt to extend the existing mapping failed. Free it. */
4779 if( pNew==MAP_FAILED || pNew==0 ){
dane6ecd662013-04-01 17:56:59 +00004780 osMunmap(pOrig, nReuse);
4781 }
4782 }
4783
4784 /* If pNew is still NULL, try to create an entirely new mapping. */
4785 if( pNew==0 ){
4786 pNew = osMmap(0, nNew, flags, MAP_SHARED, h, 0);
dane6ecd662013-04-01 17:56:59 +00004787 }
4788
dan4ff7bc42013-04-02 12:04:09 +00004789 if( pNew==MAP_FAILED ){
4790 pNew = 0;
4791 nNew = 0;
4792 unixLogError(SQLITE_OK, zErr, pFd->zPath);
4793
4794 /* If the mmap() above failed, assume that all subsequent mmap() calls
4795 ** will probably fail too. Fall back to using xRead/xWrite exclusively
4796 ** in this case. */
drh9b4c59f2013-04-15 17:03:42 +00004797 pFd->mmapSizeMax = 0;
dan4ff7bc42013-04-02 12:04:09 +00004798 }
dane6ecd662013-04-01 17:56:59 +00004799 pFd->pMapRegion = (void *)pNew;
drh9b4c59f2013-04-15 17:03:42 +00004800 pFd->mmapSize = pFd->mmapSizeActual = nNew;
dane6ecd662013-04-01 17:56:59 +00004801}
4802
4803/*
danaef49d72013-03-25 16:28:54 +00004804** Memory map or remap the file opened by file-descriptor pFd (if the file
4805** is already mapped, the existing mapping is replaced by the new). Or, if
4806** there already exists a mapping for this file, and there are still
4807** outstanding xFetch() references to it, this function is a no-op.
4808**
4809** If parameter nByte is non-negative, then it is the requested size of
4810** the mapping to create. Otherwise, if nByte is less than zero, then the
4811** requested size is the size of the file on disk. The actual size of the
4812** created mapping is either the requested size or the value configured
drh0d0614b2013-03-25 23:09:28 +00004813** using SQLITE_FCNTL_MMAP_LIMIT, whichever is smaller.
danaef49d72013-03-25 16:28:54 +00004814**
4815** SQLITE_OK is returned if no error occurs (even if the mapping is not
4816** recreated as a result of outstanding references) or an SQLite error
4817** code otherwise.
4818*/
drhf3b1ed02015-12-02 13:11:03 +00004819static int unixMapfile(unixFile *pFd, i64 nMap){
danf23da962013-03-23 21:00:41 +00004820 assert( nMap>=0 || pFd->nFetchOut==0 );
drh333e6ca2015-12-02 15:44:39 +00004821 assert( nMap>0 || (pFd->mmapSize==0 && pFd->pMapRegion==0) );
danf23da962013-03-23 21:00:41 +00004822 if( pFd->nFetchOut>0 ) return SQLITE_OK;
4823
4824 if( nMap<0 ){
drh3044b512014-06-16 16:41:52 +00004825 struct stat statbuf; /* Low-level file information */
drhf3b1ed02015-12-02 13:11:03 +00004826 if( osFstat(pFd->h, &statbuf) ){
danf23da962013-03-23 21:00:41 +00004827 return SQLITE_IOERR_FSTAT;
daneb97b292013-03-20 14:26:59 +00004828 }
drh3044b512014-06-16 16:41:52 +00004829 nMap = statbuf.st_size;
danf23da962013-03-23 21:00:41 +00004830 }
drh9b4c59f2013-04-15 17:03:42 +00004831 if( nMap>pFd->mmapSizeMax ){
4832 nMap = pFd->mmapSizeMax;
daneb97b292013-03-20 14:26:59 +00004833 }
4834
drh333e6ca2015-12-02 15:44:39 +00004835 assert( nMap>0 || (pFd->mmapSize==0 && pFd->pMapRegion==0) );
danf23da962013-03-23 21:00:41 +00004836 if( nMap!=pFd->mmapSize ){
drh333e6ca2015-12-02 15:44:39 +00004837 unixRemapfile(pFd, nMap);
dan5d8a1372013-03-19 19:28:06 +00004838 }
4839
danf23da962013-03-23 21:00:41 +00004840 return SQLITE_OK;
4841}
mistachkine98844f2013-08-24 00:59:24 +00004842#endif /* SQLITE_MAX_MMAP_SIZE>0 */
danf23da962013-03-23 21:00:41 +00004843
danaef49d72013-03-25 16:28:54 +00004844/*
4845** If possible, return a pointer to a mapping of file fd starting at offset
4846** iOff. The mapping must be valid for at least nAmt bytes.
4847**
4848** If such a pointer can be obtained, store it in *pp and return SQLITE_OK.
4849** Or, if one cannot but no error occurs, set *pp to 0 and return SQLITE_OK.
4850** Finally, if an error does occur, return an SQLite error code. The final
4851** value of *pp is undefined in this case.
4852**
4853** If this function does return a pointer, the caller must eventually
4854** release the reference by calling unixUnfetch().
4855*/
danf23da962013-03-23 21:00:41 +00004856static int unixFetch(sqlite3_file *fd, i64 iOff, int nAmt, void **pp){
drh9b4c59f2013-04-15 17:03:42 +00004857#if SQLITE_MAX_MMAP_SIZE>0
danf23da962013-03-23 21:00:41 +00004858 unixFile *pFd = (unixFile *)fd; /* The underlying database file */
drhfbc7e882013-04-11 01:16:15 +00004859#endif
danf23da962013-03-23 21:00:41 +00004860 *pp = 0;
4861
drh9b4c59f2013-04-15 17:03:42 +00004862#if SQLITE_MAX_MMAP_SIZE>0
4863 if( pFd->mmapSizeMax>0 ){
danf23da962013-03-23 21:00:41 +00004864 if( pFd->pMapRegion==0 ){
4865 int rc = unixMapfile(pFd, -1);
4866 if( rc!=SQLITE_OK ) return rc;
4867 }
4868 if( pFd->mmapSize >= iOff+nAmt ){
4869 *pp = &((u8 *)pFd->pMapRegion)[iOff];
4870 pFd->nFetchOut++;
4871 }
4872 }
drh6e0b6d52013-04-09 16:19:20 +00004873#endif
danf23da962013-03-23 21:00:41 +00004874 return SQLITE_OK;
4875}
4876
danaef49d72013-03-25 16:28:54 +00004877/*
dandf737fe2013-03-25 17:00:24 +00004878** If the third argument is non-NULL, then this function releases a
4879** reference obtained by an earlier call to unixFetch(). The second
4880** argument passed to this function must be the same as the corresponding
4881** argument that was passed to the unixFetch() invocation.
4882**
4883** Or, if the third argument is NULL, then this function is being called
4884** to inform the VFS layer that, according to POSIX, any existing mapping
4885** may now be invalid and should be unmapped.
danaef49d72013-03-25 16:28:54 +00004886*/
dandf737fe2013-03-25 17:00:24 +00004887static int unixUnfetch(sqlite3_file *fd, i64 iOff, void *p){
mistachkinb5ca3cb2013-08-24 01:12:03 +00004888#if SQLITE_MAX_MMAP_SIZE>0
drh1bcbc622014-01-09 13:39:07 +00004889 unixFile *pFd = (unixFile *)fd; /* The underlying database file */
dan9871c592014-01-10 16:40:21 +00004890 UNUSED_PARAMETER(iOff);
drh1bcbc622014-01-09 13:39:07 +00004891
danaef49d72013-03-25 16:28:54 +00004892 /* If p==0 (unmap the entire file) then there must be no outstanding
4893 ** xFetch references. Or, if p!=0 (meaning it is an xFetch reference),
4894 ** then there must be at least one outstanding. */
danf23da962013-03-23 21:00:41 +00004895 assert( (p==0)==(pFd->nFetchOut==0) );
4896
dandf737fe2013-03-25 17:00:24 +00004897 /* If p!=0, it must match the iOff value. */
4898 assert( p==0 || p==&((u8 *)pFd->pMapRegion)[iOff] );
4899
danf23da962013-03-23 21:00:41 +00004900 if( p ){
4901 pFd->nFetchOut--;
4902 }else{
4903 unixUnmapfile(pFd);
4904 }
4905
4906 assert( pFd->nFetchOut>=0 );
drh1bcbc622014-01-09 13:39:07 +00004907#else
4908 UNUSED_PARAMETER(fd);
4909 UNUSED_PARAMETER(p);
dan9871c592014-01-10 16:40:21 +00004910 UNUSED_PARAMETER(iOff);
mistachkinb5ca3cb2013-08-24 01:12:03 +00004911#endif
danf23da962013-03-23 21:00:41 +00004912 return SQLITE_OK;
dan5d8a1372013-03-19 19:28:06 +00004913}
4914
4915/*
drh734c9862008-11-28 15:37:20 +00004916** Here ends the implementation of all sqlite3_file methods.
4917**
4918********************** End sqlite3_file Methods *******************************
4919******************************************************************************/
4920
4921/*
drh6b9d6dd2008-12-03 19:34:47 +00004922** This division contains definitions of sqlite3_io_methods objects that
4923** implement various file locking strategies. It also contains definitions
4924** of "finder" functions. A finder-function is used to locate the appropriate
4925** sqlite3_io_methods object for a particular database file. The pAppData
4926** field of the sqlite3_vfs VFS objects are initialized to be pointers to
4927** the correct finder-function for that VFS.
4928**
4929** Most finder functions return a pointer to a fixed sqlite3_io_methods
4930** object. The only interesting finder-function is autolockIoFinder, which
4931** looks at the filesystem type and tries to guess the best locking
4932** strategy from that.
4933**
peter.d.reid60ec9142014-09-06 16:39:46 +00004934** For finder-function F, two objects are created:
drh1875f7a2008-12-08 18:19:17 +00004935**
4936** (1) The real finder-function named "FImpt()".
4937**
dane946c392009-08-22 11:39:46 +00004938** (2) A constant pointer to this function named just "F".
drh1875f7a2008-12-08 18:19:17 +00004939**
4940**
4941** A pointer to the F pointer is used as the pAppData value for VFS
4942** objects. We have to do this instead of letting pAppData point
4943** directly at the finder-function since C90 rules prevent a void*
4944** from be cast into a function pointer.
4945**
drh6b9d6dd2008-12-03 19:34:47 +00004946**
drh7708e972008-11-29 00:56:52 +00004947** Each instance of this macro generates two objects:
drh734c9862008-11-28 15:37:20 +00004948**
drh7708e972008-11-29 00:56:52 +00004949** * A constant sqlite3_io_methods object call METHOD that has locking
4950** methods CLOSE, LOCK, UNLOCK, CKRESLOCK.
4951**
4952** * An I/O method finder function called FINDER that returns a pointer
4953** to the METHOD object in the previous bullet.
drh734c9862008-11-28 15:37:20 +00004954*/
drhe6d41732015-02-21 00:49:00 +00004955#define IOMETHODS(FINDER,METHOD,VERSION,CLOSE,LOCK,UNLOCK,CKLOCK,SHMMAP) \
drh7708e972008-11-29 00:56:52 +00004956static const sqlite3_io_methods METHOD = { \
drhd9e5c4f2010-05-12 18:01:39 +00004957 VERSION, /* iVersion */ \
drh7708e972008-11-29 00:56:52 +00004958 CLOSE, /* xClose */ \
4959 unixRead, /* xRead */ \
4960 unixWrite, /* xWrite */ \
4961 unixTruncate, /* xTruncate */ \
4962 unixSync, /* xSync */ \
4963 unixFileSize, /* xFileSize */ \
4964 LOCK, /* xLock */ \
4965 UNLOCK, /* xUnlock */ \
4966 CKLOCK, /* xCheckReservedLock */ \
4967 unixFileControl, /* xFileControl */ \
4968 unixSectorSize, /* xSectorSize */ \
drhd9e5c4f2010-05-12 18:01:39 +00004969 unixDeviceCharacteristics, /* xDeviceCapabilities */ \
drhd9f94412014-09-22 03:22:27 +00004970 SHMMAP, /* xShmMap */ \
danda9fe0c2010-07-13 18:44:03 +00004971 unixShmLock, /* xShmLock */ \
drh286a2882010-05-20 23:51:06 +00004972 unixShmBarrier, /* xShmBarrier */ \
dan5d8a1372013-03-19 19:28:06 +00004973 unixShmUnmap, /* xShmUnmap */ \
danf23da962013-03-23 21:00:41 +00004974 unixFetch, /* xFetch */ \
4975 unixUnfetch, /* xUnfetch */ \
drh7708e972008-11-29 00:56:52 +00004976}; \
drh0c2694b2009-09-03 16:23:44 +00004977static const sqlite3_io_methods *FINDER##Impl(const char *z, unixFile *p){ \
4978 UNUSED_PARAMETER(z); UNUSED_PARAMETER(p); \
drh7708e972008-11-29 00:56:52 +00004979 return &METHOD; \
drh1875f7a2008-12-08 18:19:17 +00004980} \
drh0c2694b2009-09-03 16:23:44 +00004981static const sqlite3_io_methods *(*const FINDER)(const char*,unixFile *p) \
drh1875f7a2008-12-08 18:19:17 +00004982 = FINDER##Impl;
drh7708e972008-11-29 00:56:52 +00004983
4984/*
4985** Here are all of the sqlite3_io_methods objects for each of the
4986** locking strategies. Functions that return pointers to these methods
4987** are also created.
4988*/
4989IOMETHODS(
4990 posixIoFinder, /* Finder function name */
4991 posixIoMethods, /* sqlite3_io_methods object name */
dan5d8a1372013-03-19 19:28:06 +00004992 3, /* shared memory and mmap are enabled */
drh7708e972008-11-29 00:56:52 +00004993 unixClose, /* xClose method */
4994 unixLock, /* xLock method */
4995 unixUnlock, /* xUnlock method */
drhd9f94412014-09-22 03:22:27 +00004996 unixCheckReservedLock, /* xCheckReservedLock method */
4997 unixShmMap /* xShmMap method */
drh1875f7a2008-12-08 18:19:17 +00004998)
drh7708e972008-11-29 00:56:52 +00004999IOMETHODS(
5000 nolockIoFinder, /* Finder function name */
5001 nolockIoMethods, /* sqlite3_io_methods object name */
drh142341c2014-09-19 19:00:48 +00005002 3, /* shared memory is disabled */
drh7708e972008-11-29 00:56:52 +00005003 nolockClose, /* xClose method */
5004 nolockLock, /* xLock method */
5005 nolockUnlock, /* xUnlock method */
drhd9f94412014-09-22 03:22:27 +00005006 nolockCheckReservedLock, /* xCheckReservedLock method */
5007 0 /* xShmMap method */
drh1875f7a2008-12-08 18:19:17 +00005008)
drh7708e972008-11-29 00:56:52 +00005009IOMETHODS(
5010 dotlockIoFinder, /* Finder function name */
5011 dotlockIoMethods, /* sqlite3_io_methods object name */
drh6e1f4822010-07-13 23:41:40 +00005012 1, /* shared memory is disabled */
drh7708e972008-11-29 00:56:52 +00005013 dotlockClose, /* xClose method */
5014 dotlockLock, /* xLock method */
5015 dotlockUnlock, /* xUnlock method */
drhd9f94412014-09-22 03:22:27 +00005016 dotlockCheckReservedLock, /* xCheckReservedLock method */
5017 0 /* xShmMap method */
drh1875f7a2008-12-08 18:19:17 +00005018)
drh7708e972008-11-29 00:56:52 +00005019
drhe89b2912015-03-03 20:42:01 +00005020#if SQLITE_ENABLE_LOCKING_STYLE
drh7708e972008-11-29 00:56:52 +00005021IOMETHODS(
5022 flockIoFinder, /* Finder function name */
5023 flockIoMethods, /* sqlite3_io_methods object name */
drh6e1f4822010-07-13 23:41:40 +00005024 1, /* shared memory is disabled */
drh7708e972008-11-29 00:56:52 +00005025 flockClose, /* xClose method */
5026 flockLock, /* xLock method */
5027 flockUnlock, /* xUnlock method */
drhd9f94412014-09-22 03:22:27 +00005028 flockCheckReservedLock, /* xCheckReservedLock method */
5029 0 /* xShmMap method */
drh1875f7a2008-12-08 18:19:17 +00005030)
drh7708e972008-11-29 00:56:52 +00005031#endif
5032
drh6c7d5c52008-11-21 20:32:33 +00005033#if OS_VXWORKS
drh7708e972008-11-29 00:56:52 +00005034IOMETHODS(
5035 semIoFinder, /* Finder function name */
5036 semIoMethods, /* sqlite3_io_methods object name */
drh6e1f4822010-07-13 23:41:40 +00005037 1, /* shared memory is disabled */
drh8cd5b252015-03-02 22:06:43 +00005038 semXClose, /* xClose method */
5039 semXLock, /* xLock method */
5040 semXUnlock, /* xUnlock method */
5041 semXCheckReservedLock, /* xCheckReservedLock method */
drhd9f94412014-09-22 03:22:27 +00005042 0 /* xShmMap method */
drh1875f7a2008-12-08 18:19:17 +00005043)
aswiftaebf4132008-11-21 00:10:35 +00005044#endif
drh7708e972008-11-29 00:56:52 +00005045
drhd2cb50b2009-01-09 21:41:17 +00005046#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
drh7708e972008-11-29 00:56:52 +00005047IOMETHODS(
5048 afpIoFinder, /* Finder function name */
5049 afpIoMethods, /* sqlite3_io_methods object name */
drh6e1f4822010-07-13 23:41:40 +00005050 1, /* shared memory is disabled */
drh7708e972008-11-29 00:56:52 +00005051 afpClose, /* xClose method */
5052 afpLock, /* xLock method */
5053 afpUnlock, /* xUnlock method */
drhd9f94412014-09-22 03:22:27 +00005054 afpCheckReservedLock, /* xCheckReservedLock method */
5055 0 /* xShmMap method */
drh1875f7a2008-12-08 18:19:17 +00005056)
drh715ff302008-12-03 22:32:44 +00005057#endif
5058
5059/*
5060** The proxy locking method is a "super-method" in the sense that it
5061** opens secondary file descriptors for the conch and lock files and
5062** it uses proxy, dot-file, AFP, and flock() locking methods on those
5063** secondary files. For this reason, the division that implements
5064** proxy locking is located much further down in the file. But we need
5065** to go ahead and define the sqlite3_io_methods and finder function
5066** for proxy locking here. So we forward declare the I/O methods.
5067*/
drhd2cb50b2009-01-09 21:41:17 +00005068#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
drh715ff302008-12-03 22:32:44 +00005069static int proxyClose(sqlite3_file*);
5070static int proxyLock(sqlite3_file*, int);
5071static int proxyUnlock(sqlite3_file*, int);
5072static int proxyCheckReservedLock(sqlite3_file*, int*);
drh7708e972008-11-29 00:56:52 +00005073IOMETHODS(
5074 proxyIoFinder, /* Finder function name */
5075 proxyIoMethods, /* sqlite3_io_methods object name */
drh6e1f4822010-07-13 23:41:40 +00005076 1, /* shared memory is disabled */
drh7708e972008-11-29 00:56:52 +00005077 proxyClose, /* xClose method */
5078 proxyLock, /* xLock method */
5079 proxyUnlock, /* xUnlock method */
drhd9f94412014-09-22 03:22:27 +00005080 proxyCheckReservedLock, /* xCheckReservedLock method */
5081 0 /* xShmMap method */
drh1875f7a2008-12-08 18:19:17 +00005082)
aswiftaebf4132008-11-21 00:10:35 +00005083#endif
drh7708e972008-11-29 00:56:52 +00005084
drh7ed97b92010-01-20 13:07:21 +00005085/* nfs lockd on OSX 10.3+ doesn't clear write locks when a read lock is set */
5086#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
5087IOMETHODS(
5088 nfsIoFinder, /* Finder function name */
5089 nfsIoMethods, /* sqlite3_io_methods object name */
drh6e1f4822010-07-13 23:41:40 +00005090 1, /* shared memory is disabled */
drh7ed97b92010-01-20 13:07:21 +00005091 unixClose, /* xClose method */
5092 unixLock, /* xLock method */
5093 nfsUnlock, /* xUnlock method */
drhd9f94412014-09-22 03:22:27 +00005094 unixCheckReservedLock, /* xCheckReservedLock method */
5095 0 /* xShmMap method */
drh7ed97b92010-01-20 13:07:21 +00005096)
5097#endif
drh7708e972008-11-29 00:56:52 +00005098
drhd2cb50b2009-01-09 21:41:17 +00005099#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
drh7708e972008-11-29 00:56:52 +00005100/*
drh6b9d6dd2008-12-03 19:34:47 +00005101** This "finder" function attempts to determine the best locking strategy
5102** for the database file "filePath". It then returns the sqlite3_io_methods
drh7708e972008-11-29 00:56:52 +00005103** object that implements that strategy.
5104**
5105** This is for MacOSX only.
5106*/
drh1875f7a2008-12-08 18:19:17 +00005107static const sqlite3_io_methods *autolockIoFinderImpl(
drh7708e972008-11-29 00:56:52 +00005108 const char *filePath, /* name of the database file */
drh0c2694b2009-09-03 16:23:44 +00005109 unixFile *pNew /* open file object for the database file */
drh7708e972008-11-29 00:56:52 +00005110){
5111 static const struct Mapping {
drh6b9d6dd2008-12-03 19:34:47 +00005112 const char *zFilesystem; /* Filesystem type name */
5113 const sqlite3_io_methods *pMethods; /* Appropriate locking method */
drh7708e972008-11-29 00:56:52 +00005114 } aMap[] = {
5115 { "hfs", &posixIoMethods },
5116 { "ufs", &posixIoMethods },
5117 { "afpfs", &afpIoMethods },
drh7708e972008-11-29 00:56:52 +00005118 { "smbfs", &afpIoMethods },
drh7708e972008-11-29 00:56:52 +00005119 { "webdav", &nolockIoMethods },
5120 { 0, 0 }
5121 };
5122 int i;
5123 struct statfs fsInfo;
5124 struct flock lockInfo;
5125
5126 if( !filePath ){
drh6b9d6dd2008-12-03 19:34:47 +00005127 /* If filePath==NULL that means we are dealing with a transient file
5128 ** that does not need to be locked. */
drh7708e972008-11-29 00:56:52 +00005129 return &nolockIoMethods;
5130 }
5131 if( statfs(filePath, &fsInfo) != -1 ){
5132 if( fsInfo.f_flags & MNT_RDONLY ){
5133 return &nolockIoMethods;
5134 }
5135 for(i=0; aMap[i].zFilesystem; i++){
5136 if( strcmp(fsInfo.f_fstypename, aMap[i].zFilesystem)==0 ){
5137 return aMap[i].pMethods;
5138 }
5139 }
5140 }
5141
5142 /* Default case. Handles, amongst others, "nfs".
5143 ** Test byte-range lock using fcntl(). If the call succeeds,
5144 ** assume that the file-system supports POSIX style locks.
drh734c9862008-11-28 15:37:20 +00005145 */
drh7708e972008-11-29 00:56:52 +00005146 lockInfo.l_len = 1;
5147 lockInfo.l_start = 0;
5148 lockInfo.l_whence = SEEK_SET;
5149 lockInfo.l_type = F_RDLCK;
drh99ab3b12011-03-02 15:09:07 +00005150 if( osFcntl(pNew->h, F_GETLK, &lockInfo)!=-1 ) {
drh7ed97b92010-01-20 13:07:21 +00005151 if( strcmp(fsInfo.f_fstypename, "nfs")==0 ){
5152 return &nfsIoMethods;
5153 } else {
5154 return &posixIoMethods;
5155 }
drh7708e972008-11-29 00:56:52 +00005156 }else{
5157 return &dotlockIoMethods;
5158 }
5159}
drh0c2694b2009-09-03 16:23:44 +00005160static const sqlite3_io_methods
5161 *(*const autolockIoFinder)(const char*,unixFile*) = autolockIoFinderImpl;
drh1875f7a2008-12-08 18:19:17 +00005162
drhd2cb50b2009-01-09 21:41:17 +00005163#endif /* defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE */
drh7708e972008-11-29 00:56:52 +00005164
drhe89b2912015-03-03 20:42:01 +00005165#if OS_VXWORKS
5166/*
5167** This "finder" function for VxWorks checks to see if posix advisory
5168** locking works. If it does, then that is what is used. If it does not
5169** work, then fallback to named semaphore locking.
chw78a13182009-04-07 05:35:03 +00005170*/
drhe89b2912015-03-03 20:42:01 +00005171static const sqlite3_io_methods *vxworksIoFinderImpl(
chw78a13182009-04-07 05:35:03 +00005172 const char *filePath, /* name of the database file */
drh0c2694b2009-09-03 16:23:44 +00005173 unixFile *pNew /* the open file object */
chw78a13182009-04-07 05:35:03 +00005174){
5175 struct flock lockInfo;
5176
5177 if( !filePath ){
5178 /* If filePath==NULL that means we are dealing with a transient file
5179 ** that does not need to be locked. */
5180 return &nolockIoMethods;
5181 }
5182
5183 /* Test if fcntl() is supported and use POSIX style locks.
5184 ** Otherwise fall back to the named semaphore method.
5185 */
5186 lockInfo.l_len = 1;
5187 lockInfo.l_start = 0;
5188 lockInfo.l_whence = SEEK_SET;
5189 lockInfo.l_type = F_RDLCK;
drh99ab3b12011-03-02 15:09:07 +00005190 if( osFcntl(pNew->h, F_GETLK, &lockInfo)!=-1 ) {
chw78a13182009-04-07 05:35:03 +00005191 return &posixIoMethods;
5192 }else{
5193 return &semIoMethods;
5194 }
5195}
drh0c2694b2009-09-03 16:23:44 +00005196static const sqlite3_io_methods
drhe89b2912015-03-03 20:42:01 +00005197 *(*const vxworksIoFinder)(const char*,unixFile*) = vxworksIoFinderImpl;
chw78a13182009-04-07 05:35:03 +00005198
drhe89b2912015-03-03 20:42:01 +00005199#endif /* OS_VXWORKS */
chw78a13182009-04-07 05:35:03 +00005200
drh7708e972008-11-29 00:56:52 +00005201/*
peter.d.reid60ec9142014-09-06 16:39:46 +00005202** An abstract type for a pointer to an IO method finder function:
drh7708e972008-11-29 00:56:52 +00005203*/
drh0c2694b2009-09-03 16:23:44 +00005204typedef const sqlite3_io_methods *(*finder_type)(const char*,unixFile*);
drh7708e972008-11-29 00:56:52 +00005205
aswiftaebf4132008-11-21 00:10:35 +00005206
drh734c9862008-11-28 15:37:20 +00005207/****************************************************************************
5208**************************** sqlite3_vfs methods ****************************
5209**
5210** This division contains the implementation of methods on the
5211** sqlite3_vfs object.
5212*/
5213
danielk1977a3d4c882007-03-23 10:08:38 +00005214/*
danielk1977e339d652008-06-28 11:23:00 +00005215** Initialize the contents of the unixFile structure pointed to by pId.
danielk1977ad94b582007-08-20 06:44:22 +00005216*/
5217static int fillInUnixFile(
danielk1977e339d652008-06-28 11:23:00 +00005218 sqlite3_vfs *pVfs, /* Pointer to vfs object */
drhbfe66312006-10-03 17:40:40 +00005219 int h, /* Open file descriptor of file being opened */
drh218c5082008-03-07 00:27:10 +00005220 sqlite3_file *pId, /* Write to the unixFile structure here */
drhda0e7682008-07-30 15:27:54 +00005221 const char *zFilename, /* Name of the file being opened */
drhc02a43a2012-01-10 23:18:38 +00005222 int ctrlFlags /* Zero or more UNIXFILE_* values */
drhbfe66312006-10-03 17:40:40 +00005223){
drh7708e972008-11-29 00:56:52 +00005224 const sqlite3_io_methods *pLockingStyle;
drhda0e7682008-07-30 15:27:54 +00005225 unixFile *pNew = (unixFile *)pId;
5226 int rc = SQLITE_OK;
5227
drh8af6c222010-05-14 12:43:01 +00005228 assert( pNew->pInode==NULL );
drh218c5082008-03-07 00:27:10 +00005229
dan00157392010-10-05 11:33:15 +00005230 /* Usually the path zFilename should not be a relative pathname. The
5231 ** exception is when opening the proxy "conch" file in builds that
5232 ** include the special Apple locking styles.
5233 */
dan00157392010-10-05 11:33:15 +00005234#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
drhf7f55ed2010-10-05 18:22:47 +00005235 assert( zFilename==0 || zFilename[0]=='/'
5236 || pVfs->pAppData==(void*)&autolockIoFinder );
5237#else
5238 assert( zFilename==0 || zFilename[0]=='/' );
dan00157392010-10-05 11:33:15 +00005239#endif
dan00157392010-10-05 11:33:15 +00005240
drhb07028f2011-10-14 21:49:18 +00005241 /* No locking occurs in temporary files */
drhc02a43a2012-01-10 23:18:38 +00005242 assert( zFilename!=0 || (ctrlFlags & UNIXFILE_NOLOCK)!=0 );
drhb07028f2011-10-14 21:49:18 +00005243
drh308c2a52010-05-14 11:30:18 +00005244 OSTRACE(("OPEN %-3d %s\n", h, zFilename));
danielk1977ad94b582007-08-20 06:44:22 +00005245 pNew->h = h;
drhde60fc22011-12-14 17:53:36 +00005246 pNew->pVfs = pVfs;
drhd9e5c4f2010-05-12 18:01:39 +00005247 pNew->zPath = zFilename;
drhc02a43a2012-01-10 23:18:38 +00005248 pNew->ctrlFlags = (u8)ctrlFlags;
mistachkinb5ca3cb2013-08-24 01:12:03 +00005249#if SQLITE_MAX_MMAP_SIZE>0
danede01a92013-05-17 12:10:52 +00005250 pNew->mmapSizeMax = sqlite3GlobalConfig.szMmap;
mistachkinb5ca3cb2013-08-24 01:12:03 +00005251#endif
drhc02a43a2012-01-10 23:18:38 +00005252 if( sqlite3_uri_boolean(((ctrlFlags & UNIXFILE_URI) ? zFilename : 0),
5253 "psow", SQLITE_POWERSAFE_OVERWRITE) ){
drhcb15f352011-12-23 01:04:17 +00005254 pNew->ctrlFlags |= UNIXFILE_PSOW;
drhbec7c972011-12-23 00:25:02 +00005255 }
drh503a6862013-03-01 01:07:17 +00005256 if( strcmp(pVfs->zName,"unix-excl")==0 ){
drhf12b3f62011-12-21 14:42:29 +00005257 pNew->ctrlFlags |= UNIXFILE_EXCL;
drha7e61d82011-03-12 17:02:57 +00005258 }
drh339eb0b2008-03-07 15:34:11 +00005259
drh6c7d5c52008-11-21 20:32:33 +00005260#if OS_VXWORKS
drh107886a2008-11-21 22:21:50 +00005261 pNew->pId = vxworksFindFileId(zFilename);
5262 if( pNew->pId==0 ){
drhc02a43a2012-01-10 23:18:38 +00005263 ctrlFlags |= UNIXFILE_NOLOCK;
mistachkinfad30392016-02-13 23:43:46 +00005264 rc = SQLITE_NOMEM_BKPT;
chw97185482008-11-17 08:05:31 +00005265 }
5266#endif
5267
drhc02a43a2012-01-10 23:18:38 +00005268 if( ctrlFlags & UNIXFILE_NOLOCK ){
drh7708e972008-11-29 00:56:52 +00005269 pLockingStyle = &nolockIoMethods;
drhda0e7682008-07-30 15:27:54 +00005270 }else{
drh0c2694b2009-09-03 16:23:44 +00005271 pLockingStyle = (**(finder_type*)pVfs->pAppData)(zFilename, pNew);
aswiftaebf4132008-11-21 00:10:35 +00005272#if SQLITE_ENABLE_LOCKING_STYLE
5273 /* Cache zFilename in the locking context (AFP and dotlock override) for
5274 ** proxyLock activation is possible (remote proxy is based on db name)
5275 ** zFilename remains valid until file is closed, to support */
5276 pNew->lockingContext = (void*)zFilename;
5277#endif
drhda0e7682008-07-30 15:27:54 +00005278 }
danielk1977e339d652008-06-28 11:23:00 +00005279
drh7ed97b92010-01-20 13:07:21 +00005280 if( pLockingStyle == &posixIoMethods
5281#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
5282 || pLockingStyle == &nfsIoMethods
5283#endif
5284 ){
drh7708e972008-11-29 00:56:52 +00005285 unixEnterMutex();
drh8af6c222010-05-14 12:43:01 +00005286 rc = findInodeInfo(pNew, &pNew->pInode);
dane946c392009-08-22 11:39:46 +00005287 if( rc!=SQLITE_OK ){
mistachkin48864df2013-03-21 21:20:32 +00005288 /* If an error occurred in findInodeInfo(), close the file descriptor
drh8af6c222010-05-14 12:43:01 +00005289 ** immediately, before releasing the mutex. findInodeInfo() may fail
dane946c392009-08-22 11:39:46 +00005290 ** in two scenarios:
5291 **
5292 ** (a) A call to fstat() failed.
5293 ** (b) A malloc failed.
5294 **
5295 ** Scenario (b) may only occur if the process is holding no other
5296 ** file descriptors open on the same file. If there were other file
5297 ** descriptors on this file, then no malloc would be required by
drh8af6c222010-05-14 12:43:01 +00005298 ** findInodeInfo(). If this is the case, it is quite safe to close
dane946c392009-08-22 11:39:46 +00005299 ** handle h - as it is guaranteed that no posix locks will be released
5300 ** by doing so.
5301 **
5302 ** If scenario (a) caused the error then things are not so safe. The
5303 ** implicit assumption here is that if fstat() fails, things are in
5304 ** such bad shape that dropping a lock or two doesn't matter much.
5305 */
drh0e9365c2011-03-02 02:08:13 +00005306 robust_close(pNew, h, __LINE__);
dane946c392009-08-22 11:39:46 +00005307 h = -1;
5308 }
drh7708e972008-11-29 00:56:52 +00005309 unixLeaveMutex();
5310 }
danielk1977e339d652008-06-28 11:23:00 +00005311
drhd2cb50b2009-01-09 21:41:17 +00005312#if SQLITE_ENABLE_LOCKING_STYLE && defined(__APPLE__)
aswiftf0551ee2008-12-03 21:26:19 +00005313 else if( pLockingStyle == &afpIoMethods ){
drh7708e972008-11-29 00:56:52 +00005314 /* AFP locking uses the file path so it needs to be included in
5315 ** the afpLockingContext.
5316 */
5317 afpLockingContext *pCtx;
drhf3cdcdc2015-04-29 16:50:28 +00005318 pNew->lockingContext = pCtx = sqlite3_malloc64( sizeof(*pCtx) );
drh7708e972008-11-29 00:56:52 +00005319 if( pCtx==0 ){
mistachkinfad30392016-02-13 23:43:46 +00005320 rc = SQLITE_NOMEM_BKPT;
drh7708e972008-11-29 00:56:52 +00005321 }else{
5322 /* NB: zFilename exists and remains valid until the file is closed
5323 ** according to requirement F11141. So we do not need to make a
5324 ** copy of the filename. */
5325 pCtx->dbPath = zFilename;
drh7ed97b92010-01-20 13:07:21 +00005326 pCtx->reserved = 0;
drh7708e972008-11-29 00:56:52 +00005327 srandomdev();
drh6c7d5c52008-11-21 20:32:33 +00005328 unixEnterMutex();
drh8af6c222010-05-14 12:43:01 +00005329 rc = findInodeInfo(pNew, &pNew->pInode);
drh7ed97b92010-01-20 13:07:21 +00005330 if( rc!=SQLITE_OK ){
5331 sqlite3_free(pNew->lockingContext);
drh0e9365c2011-03-02 02:08:13 +00005332 robust_close(pNew, h, __LINE__);
drh7ed97b92010-01-20 13:07:21 +00005333 h = -1;
5334 }
drh7708e972008-11-29 00:56:52 +00005335 unixLeaveMutex();
drhbfe66312006-10-03 17:40:40 +00005336 }
drh7708e972008-11-29 00:56:52 +00005337 }
5338#endif
danielk1977e339d652008-06-28 11:23:00 +00005339
drh7708e972008-11-29 00:56:52 +00005340 else if( pLockingStyle == &dotlockIoMethods ){
5341 /* Dotfile locking uses the file path so it needs to be included in
5342 ** the dotlockLockingContext
5343 */
5344 char *zLockFile;
5345 int nFilename;
drhb07028f2011-10-14 21:49:18 +00005346 assert( zFilename!=0 );
drhea678832008-12-10 19:26:22 +00005347 nFilename = (int)strlen(zFilename) + 6;
drhf3cdcdc2015-04-29 16:50:28 +00005348 zLockFile = (char *)sqlite3_malloc64(nFilename);
drh7708e972008-11-29 00:56:52 +00005349 if( zLockFile==0 ){
mistachkinfad30392016-02-13 23:43:46 +00005350 rc = SQLITE_NOMEM_BKPT;
drh7708e972008-11-29 00:56:52 +00005351 }else{
5352 sqlite3_snprintf(nFilename, zLockFile, "%s" DOTLOCK_SUFFIX, zFilename);
danielk1977e339d652008-06-28 11:23:00 +00005353 }
drh7708e972008-11-29 00:56:52 +00005354 pNew->lockingContext = zLockFile;
5355 }
danielk1977e339d652008-06-28 11:23:00 +00005356
drh6c7d5c52008-11-21 20:32:33 +00005357#if OS_VXWORKS
drh7708e972008-11-29 00:56:52 +00005358 else if( pLockingStyle == &semIoMethods ){
5359 /* Named semaphore locking uses the file path so it needs to be
5360 ** included in the semLockingContext
5361 */
5362 unixEnterMutex();
drh8af6c222010-05-14 12:43:01 +00005363 rc = findInodeInfo(pNew, &pNew->pInode);
5364 if( (rc==SQLITE_OK) && (pNew->pInode->pSem==NULL) ){
5365 char *zSemName = pNew->pInode->aSemName;
drh7708e972008-11-29 00:56:52 +00005366 int n;
drh2238dcc2009-08-27 17:56:20 +00005367 sqlite3_snprintf(MAX_PATHNAME, zSemName, "/%s.sem",
drh7708e972008-11-29 00:56:52 +00005368 pNew->pId->zCanonicalName);
drh2238dcc2009-08-27 17:56:20 +00005369 for( n=1; zSemName[n]; n++ )
drh7708e972008-11-29 00:56:52 +00005370 if( zSemName[n]=='/' ) zSemName[n] = '_';
drh8af6c222010-05-14 12:43:01 +00005371 pNew->pInode->pSem = sem_open(zSemName, O_CREAT, 0666, 1);
5372 if( pNew->pInode->pSem == SEM_FAILED ){
mistachkinfad30392016-02-13 23:43:46 +00005373 rc = SQLITE_NOMEM_BKPT;
drh8af6c222010-05-14 12:43:01 +00005374 pNew->pInode->aSemName[0] = '\0';
chw97185482008-11-17 08:05:31 +00005375 }
chw97185482008-11-17 08:05:31 +00005376 }
drh7708e972008-11-29 00:56:52 +00005377 unixLeaveMutex();
danielk1977e339d652008-06-28 11:23:00 +00005378 }
drh7708e972008-11-29 00:56:52 +00005379#endif
aswift5b1a2562008-08-22 00:22:35 +00005380
drh4bf66fd2015-02-19 02:43:02 +00005381 storeLastErrno(pNew, 0);
drh6c7d5c52008-11-21 20:32:33 +00005382#if OS_VXWORKS
chw97185482008-11-17 08:05:31 +00005383 if( rc!=SQLITE_OK ){
drh0e9365c2011-03-02 02:08:13 +00005384 if( h>=0 ) robust_close(pNew, h, __LINE__);
drh309e6552010-02-05 18:00:26 +00005385 h = -1;
drh036ac7f2011-08-08 23:18:05 +00005386 osUnlink(zFilename);
drhc5797542013-04-27 12:13:29 +00005387 pNew->ctrlFlags |= UNIXFILE_DELETE;
chw97185482008-11-17 08:05:31 +00005388 }
chw97185482008-11-17 08:05:31 +00005389#endif
danielk1977e339d652008-06-28 11:23:00 +00005390 if( rc!=SQLITE_OK ){
drh0e9365c2011-03-02 02:08:13 +00005391 if( h>=0 ) robust_close(pNew, h, __LINE__);
danielk1977e339d652008-06-28 11:23:00 +00005392 }else{
drh7708e972008-11-29 00:56:52 +00005393 pNew->pMethod = pLockingStyle;
danielk1977e339d652008-06-28 11:23:00 +00005394 OpenCounter(+1);
drhfbc7e882013-04-11 01:16:15 +00005395 verifyDbFile(pNew);
drhbfe66312006-10-03 17:40:40 +00005396 }
danielk1977e339d652008-06-28 11:23:00 +00005397 return rc;
drh054889e2005-11-30 03:20:31 +00005398}
drh9c06c952005-11-26 00:25:00 +00005399
danielk1977ad94b582007-08-20 06:44:22 +00005400/*
drh8b3cf822010-06-01 21:02:51 +00005401** Return the name of a directory in which to put temporary files.
5402** If no suitable temporary file directory can be found, return NULL.
danielk197717b90b52008-06-06 11:11:25 +00005403*/
drh7234c6d2010-06-19 15:10:09 +00005404static const char *unixTempFileDir(void){
danielk197717b90b52008-06-06 11:11:25 +00005405 static const char *azDirs[] = {
5406 0,
aswiftaebf4132008-11-21 00:10:35 +00005407 0,
danielk197717b90b52008-06-06 11:11:25 +00005408 "/var/tmp",
5409 "/usr/tmp",
5410 "/tmp",
drhb7e50ad2015-11-28 21:49:53 +00005411 "."
danielk197717b90b52008-06-06 11:11:25 +00005412 };
drh8b3cf822010-06-01 21:02:51 +00005413 unsigned int i;
5414 struct stat buf;
drhb7e50ad2015-11-28 21:49:53 +00005415 const char *zDir = sqlite3_temp_directory;
drh8b3cf822010-06-01 21:02:51 +00005416
drhb7e50ad2015-11-28 21:49:53 +00005417 if( !azDirs[0] ) azDirs[0] = getenv("SQLITE_TMPDIR");
5418 if( !azDirs[1] ) azDirs[1] = getenv("TMPDIR");
drh19515c82010-06-19 23:53:11 +00005419 for(i=0; i<sizeof(azDirs)/sizeof(azDirs[0]); zDir=azDirs[i++]){
drh8b3cf822010-06-01 21:02:51 +00005420 if( zDir==0 ) continue;
drh99ab3b12011-03-02 15:09:07 +00005421 if( osStat(zDir, &buf) ) continue;
drh8b3cf822010-06-01 21:02:51 +00005422 if( !S_ISDIR(buf.st_mode) ) continue;
drh99ab3b12011-03-02 15:09:07 +00005423 if( osAccess(zDir, 07) ) continue;
drh8b3cf822010-06-01 21:02:51 +00005424 break;
5425 }
5426 return zDir;
5427}
5428
5429/*
5430** Create a temporary file name in zBuf. zBuf must be allocated
5431** by the calling process and must be big enough to hold at least
5432** pVfs->mxPathname bytes.
5433*/
5434static int unixGetTempname(int nBuf, char *zBuf){
drh8b3cf822010-06-01 21:02:51 +00005435 const char *zDir;
drhb7e50ad2015-11-28 21:49:53 +00005436 int iLimit = 0;
danielk197717b90b52008-06-06 11:11:25 +00005437
5438 /* It's odd to simulate an io-error here, but really this is just
5439 ** using the io-error infrastructure to test that SQLite handles this
5440 ** function failing.
5441 */
5442 SimulateIOError( return SQLITE_IOERR );
5443
drh7234c6d2010-06-19 15:10:09 +00005444 zDir = unixTempFileDir();
danielk197717b90b52008-06-06 11:11:25 +00005445 do{
drh970942e2015-11-25 23:13:14 +00005446 u64 r;
5447 sqlite3_randomness(sizeof(r), &r);
5448 assert( nBuf>2 );
5449 zBuf[nBuf-2] = 0;
5450 sqlite3_snprintf(nBuf, zBuf, "%s/"SQLITE_TEMP_FILE_PREFIX"%llx%c",
5451 zDir, r, 0);
drhb7e50ad2015-11-28 21:49:53 +00005452 if( zBuf[nBuf-2]!=0 || (iLimit++)>10 ) return SQLITE_ERROR;
drh99ab3b12011-03-02 15:09:07 +00005453 }while( osAccess(zBuf,0)==0 );
danielk197717b90b52008-06-06 11:11:25 +00005454 return SQLITE_OK;
5455}
5456
drhd2cb50b2009-01-09 21:41:17 +00005457#if SQLITE_ENABLE_LOCKING_STYLE && defined(__APPLE__)
drhc66d5b62008-12-03 22:48:32 +00005458/*
5459** Routine to transform a unixFile into a proxy-locking unixFile.
5460** Implementation in the proxy-lock division, but used by unixOpen()
5461** if SQLITE_PREFER_PROXY_LOCKING is defined.
5462*/
5463static int proxyTransformUnixFile(unixFile*, const char*);
drh947bd802008-12-04 12:34:15 +00005464#endif
drhc66d5b62008-12-03 22:48:32 +00005465
dan08da86a2009-08-21 17:18:03 +00005466/*
5467** Search for an unused file descriptor that was opened on the database
5468** file (not a journal or master-journal file) identified by pathname
5469** zPath with SQLITE_OPEN_XXX flags matching those passed as the second
5470** argument to this function.
5471**
5472** Such a file descriptor may exist if a database connection was closed
5473** but the associated file descriptor could not be closed because some
5474** other file descriptor open on the same file is holding a file-lock.
5475** Refer to comments in the unixClose() function and the lengthy comment
5476** describing "Posix Advisory Locking" at the start of this file for
5477** further details. Also, ticket #4018.
5478**
5479** If a suitable file descriptor is found, then it is returned. If no
5480** such file descriptor is located, -1 is returned.
5481*/
dane946c392009-08-22 11:39:46 +00005482static UnixUnusedFd *findReusableFd(const char *zPath, int flags){
5483 UnixUnusedFd *pUnused = 0;
5484
5485 /* Do not search for an unused file descriptor on vxworks. Not because
5486 ** vxworks would not benefit from the change (it might, we're not sure),
5487 ** but because no way to test it is currently available. It is better
5488 ** not to risk breaking vxworks support for the sake of such an obscure
5489 ** feature. */
5490#if !OS_VXWORKS
dan08da86a2009-08-21 17:18:03 +00005491 struct stat sStat; /* Results of stat() call */
5492
5493 /* A stat() call may fail for various reasons. If this happens, it is
5494 ** almost certain that an open() call on the same path will also fail.
5495 ** For this reason, if an error occurs in the stat() call here, it is
5496 ** ignored and -1 is returned. The caller will try to open a new file
5497 ** descriptor on the same path, fail, and return an error to SQLite.
5498 **
5499 ** Even if a subsequent open() call does succeed, the consequences of
peter.d.reid60ec9142014-09-06 16:39:46 +00005500 ** not searching for a reusable file descriptor are not dire. */
drh58384f12011-07-28 00:14:45 +00005501 if( 0==osStat(zPath, &sStat) ){
drhd91c68f2010-05-14 14:52:25 +00005502 unixInodeInfo *pInode;
dan08da86a2009-08-21 17:18:03 +00005503
5504 unixEnterMutex();
drh8af6c222010-05-14 12:43:01 +00005505 pInode = inodeList;
5506 while( pInode && (pInode->fileId.dev!=sStat.st_dev
5507 || pInode->fileId.ino!=sStat.st_ino) ){
5508 pInode = pInode->pNext;
drh9061ad12010-01-05 00:14:49 +00005509 }
drh8af6c222010-05-14 12:43:01 +00005510 if( pInode ){
dane946c392009-08-22 11:39:46 +00005511 UnixUnusedFd **pp;
drh8af6c222010-05-14 12:43:01 +00005512 for(pp=&pInode->pUnused; *pp && (*pp)->flags!=flags; pp=&((*pp)->pNext));
dane946c392009-08-22 11:39:46 +00005513 pUnused = *pp;
5514 if( pUnused ){
5515 *pp = pUnused->pNext;
dan08da86a2009-08-21 17:18:03 +00005516 }
5517 }
5518 unixLeaveMutex();
5519 }
dane946c392009-08-22 11:39:46 +00005520#endif /* if !OS_VXWORKS */
5521 return pUnused;
dan08da86a2009-08-21 17:18:03 +00005522}
danielk197717b90b52008-06-06 11:11:25 +00005523
5524/*
danddb0ac42010-07-14 14:48:58 +00005525** This function is called by unixOpen() to determine the unix permissions
drhf65bc912010-07-14 20:51:34 +00005526** to create new files with. If no error occurs, then SQLITE_OK is returned
danddb0ac42010-07-14 14:48:58 +00005527** and a value suitable for passing as the third argument to open(2) is
5528** written to *pMode. If an IO error occurs, an SQLite error code is
5529** returned and the value of *pMode is not modified.
5530**
peter.d.reid60ec9142014-09-06 16:39:46 +00005531** In most cases, this routine sets *pMode to 0, which will become
drh8c815d12012-02-13 20:16:37 +00005532** an indication to robust_open() to create the file using
5533** SQLITE_DEFAULT_FILE_PERMISSIONS adjusted by the umask.
5534** But if the file being opened is a WAL or regular journal file, then
drh8ab58662010-07-15 18:38:39 +00005535** this function queries the file-system for the permissions on the
5536** corresponding database file and sets *pMode to this value. Whenever
5537** possible, WAL and journal files are created using the same permissions
5538** as the associated database file.
drh81cc5162011-05-17 20:36:21 +00005539**
5540** If the SQLITE_ENABLE_8_3_NAMES option is enabled, then the
5541** original filename is unavailable. But 8_3_NAMES is only used for
5542** FAT filesystems and permissions do not matter there, so just use
5543** the default permissions.
danddb0ac42010-07-14 14:48:58 +00005544*/
5545static int findCreateFileMode(
5546 const char *zPath, /* Path of file (possibly) being created */
5547 int flags, /* Flags passed as 4th argument to xOpen() */
drhac7c3ac2012-02-11 19:23:48 +00005548 mode_t *pMode, /* OUT: Permissions to open file with */
5549 uid_t *pUid, /* OUT: uid to set on the file */
5550 gid_t *pGid /* OUT: gid to set on the file */
danddb0ac42010-07-14 14:48:58 +00005551){
5552 int rc = SQLITE_OK; /* Return Code */
drh8c815d12012-02-13 20:16:37 +00005553 *pMode = 0;
drhac7c3ac2012-02-11 19:23:48 +00005554 *pUid = 0;
5555 *pGid = 0;
drh8ab58662010-07-15 18:38:39 +00005556 if( flags & (SQLITE_OPEN_WAL|SQLITE_OPEN_MAIN_JOURNAL) ){
danddb0ac42010-07-14 14:48:58 +00005557 char zDb[MAX_PATHNAME+1]; /* Database file path */
5558 int nDb; /* Number of valid bytes in zDb */
5559 struct stat sStat; /* Output of stat() on database file */
5560
dana0c989d2010-11-05 18:07:37 +00005561 /* zPath is a path to a WAL or journal file. The following block derives
5562 ** the path to the associated database file from zPath. This block handles
5563 ** the following naming conventions:
5564 **
5565 ** "<path to db>-journal"
5566 ** "<path to db>-wal"
drh81cc5162011-05-17 20:36:21 +00005567 ** "<path to db>-journalNN"
5568 ** "<path to db>-walNN"
dana0c989d2010-11-05 18:07:37 +00005569 **
drhd337c5b2011-10-20 18:23:35 +00005570 ** where NN is a decimal number. The NN naming schemes are
dana0c989d2010-11-05 18:07:37 +00005571 ** used by the test_multiplex.c module.
5572 */
5573 nDb = sqlite3Strlen30(zPath) - 1;
drhc47167a2011-10-05 15:26:13 +00005574 while( zPath[nDb]!='-' ){
drh90e5dda2015-12-03 20:42:28 +00005575#ifndef SQLITE_ENABLE_8_3_NAMES
5576 /* In the normal case (8+3 filenames disabled) the journal filename
5577 ** is guaranteed to contain a '-' character. */
drhc47167a2011-10-05 15:26:13 +00005578 assert( nDb>0 );
drh90e5dda2015-12-03 20:42:28 +00005579 assert( sqlite3Isalnum(zPath[nDb]) );
5580#else
5581 /* If 8+3 names are possible, then the journal file might not contain
5582 ** a '-' character. So check for that case and return early. */
5583 if( nDb==0 || zPath[nDb]=='.' ) return SQLITE_OK;
5584#endif
drhc47167a2011-10-05 15:26:13 +00005585 nDb--;
5586 }
danddb0ac42010-07-14 14:48:58 +00005587 memcpy(zDb, zPath, nDb);
5588 zDb[nDb] = '\0';
dana0c989d2010-11-05 18:07:37 +00005589
drh58384f12011-07-28 00:14:45 +00005590 if( 0==osStat(zDb, &sStat) ){
danddb0ac42010-07-14 14:48:58 +00005591 *pMode = sStat.st_mode & 0777;
drhac7c3ac2012-02-11 19:23:48 +00005592 *pUid = sStat.st_uid;
5593 *pGid = sStat.st_gid;
danddb0ac42010-07-14 14:48:58 +00005594 }else{
5595 rc = SQLITE_IOERR_FSTAT;
5596 }
5597 }else if( flags & SQLITE_OPEN_DELETEONCLOSE ){
5598 *pMode = 0600;
danddb0ac42010-07-14 14:48:58 +00005599 }
5600 return rc;
5601}
5602
5603/*
danielk1977ad94b582007-08-20 06:44:22 +00005604** Open the file zPath.
5605**
danielk1977b4b47412007-08-17 15:53:36 +00005606** Previously, the SQLite OS layer used three functions in place of this
5607** one:
5608**
5609** sqlite3OsOpenReadWrite();
5610** sqlite3OsOpenReadOnly();
5611** sqlite3OsOpenExclusive();
5612**
5613** These calls correspond to the following combinations of flags:
5614**
5615** ReadWrite() -> (READWRITE | CREATE)
5616** ReadOnly() -> (READONLY)
5617** OpenExclusive() -> (READWRITE | CREATE | EXCLUSIVE)
5618**
5619** The old OpenExclusive() accepted a boolean argument - "delFlag". If
5620** true, the file was configured to be automatically deleted when the
5621** file handle closed. To achieve the same effect using this new
5622** interface, add the DELETEONCLOSE flag to those specified above for
5623** OpenExclusive().
5624*/
5625static int unixOpen(
drh6b9d6dd2008-12-03 19:34:47 +00005626 sqlite3_vfs *pVfs, /* The VFS for which this is the xOpen method */
5627 const char *zPath, /* Pathname of file to be opened */
5628 sqlite3_file *pFile, /* The file descriptor to be filled in */
5629 int flags, /* Input flags to control the opening */
5630 int *pOutFlags /* Output flags returned to SQLite core */
danielk1977b4b47412007-08-17 15:53:36 +00005631){
dan08da86a2009-08-21 17:18:03 +00005632 unixFile *p = (unixFile *)pFile;
5633 int fd = -1; /* File descriptor returned by open() */
drh6b9d6dd2008-12-03 19:34:47 +00005634 int openFlags = 0; /* Flags to pass to open() */
danielk1977fee2d252007-08-18 10:59:19 +00005635 int eType = flags&0xFFFFFF00; /* Type of file to open */
drhda0e7682008-07-30 15:27:54 +00005636 int noLock; /* True to omit locking primitives */
dan08da86a2009-08-21 17:18:03 +00005637 int rc = SQLITE_OK; /* Function Return Code */
drhc02a43a2012-01-10 23:18:38 +00005638 int ctrlFlags = 0; /* UNIXFILE_* flags */
danielk1977b4b47412007-08-17 15:53:36 +00005639
5640 int isExclusive = (flags & SQLITE_OPEN_EXCLUSIVE);
5641 int isDelete = (flags & SQLITE_OPEN_DELETEONCLOSE);
5642 int isCreate = (flags & SQLITE_OPEN_CREATE);
5643 int isReadonly = (flags & SQLITE_OPEN_READONLY);
5644 int isReadWrite = (flags & SQLITE_OPEN_READWRITE);
drh7ed97b92010-01-20 13:07:21 +00005645#if SQLITE_ENABLE_LOCKING_STYLE
5646 int isAutoProxy = (flags & SQLITE_OPEN_AUTOPROXY);
5647#endif
drh3d4435b2011-08-26 20:55:50 +00005648#if defined(__APPLE__) || SQLITE_ENABLE_LOCKING_STYLE
5649 struct statfs fsInfo;
5650#endif
danielk1977b4b47412007-08-17 15:53:36 +00005651
danielk1977fee2d252007-08-18 10:59:19 +00005652 /* If creating a master or main-file journal, this function will open
5653 ** a file-descriptor on the directory too. The first time unixSync()
5654 ** is called the directory file descriptor will be fsync()ed and close()d.
5655 */
drh0059eae2011-08-08 23:48:40 +00005656 int syncDir = (isCreate && (
danddb0ac42010-07-14 14:48:58 +00005657 eType==SQLITE_OPEN_MASTER_JOURNAL
5658 || eType==SQLITE_OPEN_MAIN_JOURNAL
5659 || eType==SQLITE_OPEN_WAL
5660 ));
danielk1977fee2d252007-08-18 10:59:19 +00005661
danielk197717b90b52008-06-06 11:11:25 +00005662 /* If argument zPath is a NULL pointer, this function is required to open
5663 ** a temporary file. Use this buffer to store the file name in.
5664 */
drhc02a43a2012-01-10 23:18:38 +00005665 char zTmpname[MAX_PATHNAME+2];
danielk197717b90b52008-06-06 11:11:25 +00005666 const char *zName = zPath;
5667
danielk1977fee2d252007-08-18 10:59:19 +00005668 /* Check the following statements are true:
5669 **
5670 ** (a) Exactly one of the READWRITE and READONLY flags must be set, and
5671 ** (b) if CREATE is set, then READWRITE must also be set, and
5672 ** (c) if EXCLUSIVE is set, then CREATE must also be set.
drh33f4e022007-09-03 15:19:34 +00005673 ** (d) if DELETEONCLOSE is set, then CREATE must also be set.
danielk1977fee2d252007-08-18 10:59:19 +00005674 */
danielk1977b4b47412007-08-17 15:53:36 +00005675 assert((isReadonly==0 || isReadWrite==0) && (isReadWrite || isReadonly));
danielk1977b4b47412007-08-17 15:53:36 +00005676 assert(isCreate==0 || isReadWrite);
danielk1977b4b47412007-08-17 15:53:36 +00005677 assert(isExclusive==0 || isCreate);
drh33f4e022007-09-03 15:19:34 +00005678 assert(isDelete==0 || isCreate);
5679
danddb0ac42010-07-14 14:48:58 +00005680 /* The main DB, main journal, WAL file and master journal are never
5681 ** automatically deleted. Nor are they ever temporary files. */
dan08da86a2009-08-21 17:18:03 +00005682 assert( (!isDelete && zName) || eType!=SQLITE_OPEN_MAIN_DB );
5683 assert( (!isDelete && zName) || eType!=SQLITE_OPEN_MAIN_JOURNAL );
5684 assert( (!isDelete && zName) || eType!=SQLITE_OPEN_MASTER_JOURNAL );
danddb0ac42010-07-14 14:48:58 +00005685 assert( (!isDelete && zName) || eType!=SQLITE_OPEN_WAL );
danielk1977b4b47412007-08-17 15:53:36 +00005686
danielk1977fee2d252007-08-18 10:59:19 +00005687 /* Assert that the upper layer has set one of the "file-type" flags. */
5688 assert( eType==SQLITE_OPEN_MAIN_DB || eType==SQLITE_OPEN_TEMP_DB
5689 || eType==SQLITE_OPEN_MAIN_JOURNAL || eType==SQLITE_OPEN_TEMP_JOURNAL
5690 || eType==SQLITE_OPEN_SUBJOURNAL || eType==SQLITE_OPEN_MASTER_JOURNAL
danddb0ac42010-07-14 14:48:58 +00005691 || eType==SQLITE_OPEN_TRANSIENT_DB || eType==SQLITE_OPEN_WAL
danielk1977fee2d252007-08-18 10:59:19 +00005692 );
5693
drhb00d8622014-01-01 15:18:36 +00005694 /* Detect a pid change and reset the PRNG. There is a race condition
5695 ** here such that two or more threads all trying to open databases at
5696 ** the same instant might all reset the PRNG. But multiple resets
5697 ** are harmless.
5698 */
drh5ac93652015-03-21 20:59:43 +00005699 if( randomnessPid!=osGetpid(0) ){
5700 randomnessPid = osGetpid(0);
drhb00d8622014-01-01 15:18:36 +00005701 sqlite3_randomness(0,0);
5702 }
5703
dan08da86a2009-08-21 17:18:03 +00005704 memset(p, 0, sizeof(unixFile));
danielk1977e339d652008-06-28 11:23:00 +00005705
dan08da86a2009-08-21 17:18:03 +00005706 if( eType==SQLITE_OPEN_MAIN_DB ){
dane946c392009-08-22 11:39:46 +00005707 UnixUnusedFd *pUnused;
5708 pUnused = findReusableFd(zName, flags);
5709 if( pUnused ){
5710 fd = pUnused->fd;
5711 }else{
drhf3cdcdc2015-04-29 16:50:28 +00005712 pUnused = sqlite3_malloc64(sizeof(*pUnused));
dane946c392009-08-22 11:39:46 +00005713 if( !pUnused ){
mistachkinfad30392016-02-13 23:43:46 +00005714 return SQLITE_NOMEM_BKPT;
dane946c392009-08-22 11:39:46 +00005715 }
5716 }
5717 p->pUnused = pUnused;
drhc02a43a2012-01-10 23:18:38 +00005718
5719 /* Database filenames are double-zero terminated if they are not
5720 ** URIs with parameters. Hence, they can always be passed into
5721 ** sqlite3_uri_parameter(). */
5722 assert( (flags & SQLITE_OPEN_URI) || zName[strlen(zName)+1]==0 );
5723
dan08da86a2009-08-21 17:18:03 +00005724 }else if( !zName ){
5725 /* If zName is NULL, the upper layer is requesting a temp file. */
drh0059eae2011-08-08 23:48:40 +00005726 assert(isDelete && !syncDir);
drhb7e50ad2015-11-28 21:49:53 +00005727 rc = unixGetTempname(pVfs->mxPathname, zTmpname);
danielk197717b90b52008-06-06 11:11:25 +00005728 if( rc!=SQLITE_OK ){
5729 return rc;
5730 }
5731 zName = zTmpname;
drhc02a43a2012-01-10 23:18:38 +00005732
5733 /* Generated temporary filenames are always double-zero terminated
5734 ** for use by sqlite3_uri_parameter(). */
5735 assert( zName[strlen(zName)+1]==0 );
danielk197717b90b52008-06-06 11:11:25 +00005736 }
5737
dan08da86a2009-08-21 17:18:03 +00005738 /* Determine the value of the flags parameter passed to POSIX function
5739 ** open(). These must be calculated even if open() is not called, as
5740 ** they may be stored as part of the file handle and used by the
5741 ** 'conch file' locking functions later on. */
drh734c9862008-11-28 15:37:20 +00005742 if( isReadonly ) openFlags |= O_RDONLY;
5743 if( isReadWrite ) openFlags |= O_RDWR;
5744 if( isCreate ) openFlags |= O_CREAT;
5745 if( isExclusive ) openFlags |= (O_EXCL|O_NOFOLLOW);
5746 openFlags |= (O_LARGEFILE|O_BINARY);
danielk1977b4b47412007-08-17 15:53:36 +00005747
danielk1977b4b47412007-08-17 15:53:36 +00005748 if( fd<0 ){
danddb0ac42010-07-14 14:48:58 +00005749 mode_t openMode; /* Permissions to create file with */
drhac7c3ac2012-02-11 19:23:48 +00005750 uid_t uid; /* Userid for the file */
5751 gid_t gid; /* Groupid for the file */
5752 rc = findCreateFileMode(zName, flags, &openMode, &uid, &gid);
danddb0ac42010-07-14 14:48:58 +00005753 if( rc!=SQLITE_OK ){
5754 assert( !p->pUnused );
drh8ab58662010-07-15 18:38:39 +00005755 assert( eType==SQLITE_OPEN_WAL || eType==SQLITE_OPEN_MAIN_JOURNAL );
danddb0ac42010-07-14 14:48:58 +00005756 return rc;
5757 }
drhad4f1e52011-03-04 15:43:57 +00005758 fd = robust_open(zName, openFlags, openMode);
drh308c2a52010-05-14 11:30:18 +00005759 OSTRACE(("OPENX %-3d %s 0%o\n", fd, zName, openFlags));
drh5a2d9702015-11-26 02:21:05 +00005760 assert( !isExclusive || (openFlags & O_CREAT)!=0 );
5761 if( fd<0 && errno!=EISDIR && isReadWrite ){
dan08da86a2009-08-21 17:18:03 +00005762 /* Failed to open the file for read/write access. Try read-only. */
5763 flags &= ~(SQLITE_OPEN_READWRITE|SQLITE_OPEN_CREATE);
dane946c392009-08-22 11:39:46 +00005764 openFlags &= ~(O_RDWR|O_CREAT);
dan08da86a2009-08-21 17:18:03 +00005765 flags |= SQLITE_OPEN_READONLY;
dane946c392009-08-22 11:39:46 +00005766 openFlags |= O_RDONLY;
drh77197112011-03-15 19:08:48 +00005767 isReadonly = 1;
drhad4f1e52011-03-04 15:43:57 +00005768 fd = robust_open(zName, openFlags, openMode);
dan08da86a2009-08-21 17:18:03 +00005769 }
5770 if( fd<0 ){
dane18d4952011-02-21 11:46:24 +00005771 rc = unixLogError(SQLITE_CANTOPEN_BKPT, "open", zName);
dane946c392009-08-22 11:39:46 +00005772 goto open_finished;
dan08da86a2009-08-21 17:18:03 +00005773 }
drhac7c3ac2012-02-11 19:23:48 +00005774
5775 /* If this process is running as root and if creating a new rollback
5776 ** journal or WAL file, set the ownership of the journal or WAL to be
drhed466822012-05-31 13:10:49 +00005777 ** the same as the original database.
drhac7c3ac2012-02-11 19:23:48 +00005778 */
5779 if( flags & (SQLITE_OPEN_WAL|SQLITE_OPEN_MAIN_JOURNAL) ){
drh6226ca22015-11-24 15:06:28 +00005780 robustFchown(fd, uid, gid);
drhac7c3ac2012-02-11 19:23:48 +00005781 }
danielk1977b4b47412007-08-17 15:53:36 +00005782 }
dan08da86a2009-08-21 17:18:03 +00005783 assert( fd>=0 );
dan08da86a2009-08-21 17:18:03 +00005784 if( pOutFlags ){
5785 *pOutFlags = flags;
5786 }
5787
dane946c392009-08-22 11:39:46 +00005788 if( p->pUnused ){
5789 p->pUnused->fd = fd;
5790 p->pUnused->flags = flags;
5791 }
5792
danielk1977b4b47412007-08-17 15:53:36 +00005793 if( isDelete ){
drh6c7d5c52008-11-21 20:32:33 +00005794#if OS_VXWORKS
chw97185482008-11-17 08:05:31 +00005795 zPath = zName;
drh0bdbc902014-06-16 18:35:06 +00005796#elif defined(SQLITE_UNLINK_AFTER_CLOSE)
5797 zPath = sqlite3_mprintf("%s", zName);
5798 if( zPath==0 ){
5799 robust_close(p, fd, __LINE__);
mistachkinfad30392016-02-13 23:43:46 +00005800 return SQLITE_NOMEM_BKPT;
drh0bdbc902014-06-16 18:35:06 +00005801 }
chw97185482008-11-17 08:05:31 +00005802#else
drh036ac7f2011-08-08 23:18:05 +00005803 osUnlink(zName);
chw97185482008-11-17 08:05:31 +00005804#endif
danielk1977b4b47412007-08-17 15:53:36 +00005805 }
drh41022642008-11-21 00:24:42 +00005806#if SQLITE_ENABLE_LOCKING_STYLE
5807 else{
dan08da86a2009-08-21 17:18:03 +00005808 p->openFlags = openFlags;
drh08c6d442009-02-09 17:34:07 +00005809 }
5810#endif
drh7ed97b92010-01-20 13:07:21 +00005811
5812#if defined(__APPLE__) || SQLITE_ENABLE_LOCKING_STYLE
drh7ed97b92010-01-20 13:07:21 +00005813 if( fstatfs(fd, &fsInfo) == -1 ){
drh4bf66fd2015-02-19 02:43:02 +00005814 storeLastErrno(p, errno);
drh0e9365c2011-03-02 02:08:13 +00005815 robust_close(p, fd, __LINE__);
drh7ed97b92010-01-20 13:07:21 +00005816 return SQLITE_IOERR_ACCESS;
5817 }
5818 if (0 == strncmp("msdos", fsInfo.f_fstypename, 5)) {
5819 ((unixFile*)pFile)->fsFlags |= SQLITE_FSFLAGS_IS_MSDOS;
5820 }
drh4bf66fd2015-02-19 02:43:02 +00005821 if (0 == strncmp("exfat", fsInfo.f_fstypename, 5)) {
5822 ((unixFile*)pFile)->fsFlags |= SQLITE_FSFLAGS_IS_MSDOS;
5823 }
drh7ed97b92010-01-20 13:07:21 +00005824#endif
drhc02a43a2012-01-10 23:18:38 +00005825
5826 /* Set up appropriate ctrlFlags */
5827 if( isDelete ) ctrlFlags |= UNIXFILE_DELETE;
5828 if( isReadonly ) ctrlFlags |= UNIXFILE_RDONLY;
drh86151e82015-12-08 14:37:16 +00005829 noLock = eType!=SQLITE_OPEN_MAIN_DB;
drhc02a43a2012-01-10 23:18:38 +00005830 if( noLock ) ctrlFlags |= UNIXFILE_NOLOCK;
5831 if( syncDir ) ctrlFlags |= UNIXFILE_DIRSYNC;
5832 if( flags & SQLITE_OPEN_URI ) ctrlFlags |= UNIXFILE_URI;
5833
drh7ed97b92010-01-20 13:07:21 +00005834#if SQLITE_ENABLE_LOCKING_STYLE
aswiftaebf4132008-11-21 00:10:35 +00005835#if SQLITE_PREFER_PROXY_LOCKING
drh7ed97b92010-01-20 13:07:21 +00005836 isAutoProxy = 1;
5837#endif
5838 if( isAutoProxy && (zPath!=NULL) && (!noLock) && pVfs->xOpen ){
aswiftaebf4132008-11-21 00:10:35 +00005839 char *envforce = getenv("SQLITE_FORCE_PROXY_LOCKING");
5840 int useProxy = 0;
5841
dan08da86a2009-08-21 17:18:03 +00005842 /* SQLITE_FORCE_PROXY_LOCKING==1 means force always use proxy, 0 means
5843 ** never use proxy, NULL means use proxy for non-local files only. */
aswiftaebf4132008-11-21 00:10:35 +00005844 if( envforce!=NULL ){
5845 useProxy = atoi(envforce)>0;
5846 }else{
aswiftaebf4132008-11-21 00:10:35 +00005847 useProxy = !(fsInfo.f_flags&MNT_LOCAL);
5848 }
5849 if( useProxy ){
drhc02a43a2012-01-10 23:18:38 +00005850 rc = fillInUnixFile(pVfs, fd, pFile, zPath, ctrlFlags);
aswiftaebf4132008-11-21 00:10:35 +00005851 if( rc==SQLITE_OK ){
drh715ff302008-12-03 22:32:44 +00005852 rc = proxyTransformUnixFile((unixFile*)pFile, ":auto:");
drh7ed97b92010-01-20 13:07:21 +00005853 if( rc!=SQLITE_OK ){
5854 /* Use unixClose to clean up the resources added in fillInUnixFile
5855 ** and clear all the structure's references. Specifically,
5856 ** pFile->pMethods will be NULL so sqlite3OsClose will be a no-op
5857 */
5858 unixClose(pFile);
5859 return rc;
5860 }
aswiftaebf4132008-11-21 00:10:35 +00005861 }
dane946c392009-08-22 11:39:46 +00005862 goto open_finished;
aswiftaebf4132008-11-21 00:10:35 +00005863 }
5864 }
5865#endif
5866
drhc02a43a2012-01-10 23:18:38 +00005867 rc = fillInUnixFile(pVfs, fd, pFile, zPath, ctrlFlags);
5868
dane946c392009-08-22 11:39:46 +00005869open_finished:
5870 if( rc!=SQLITE_OK ){
5871 sqlite3_free(p->pUnused);
5872 }
5873 return rc;
danielk1977b4b47412007-08-17 15:53:36 +00005874}
5875
dane946c392009-08-22 11:39:46 +00005876
danielk1977b4b47412007-08-17 15:53:36 +00005877/*
danielk1977fee2d252007-08-18 10:59:19 +00005878** Delete the file at zPath. If the dirSync argument is true, fsync()
5879** the directory after deleting the file.
danielk1977b4b47412007-08-17 15:53:36 +00005880*/
drh6b9d6dd2008-12-03 19:34:47 +00005881static int unixDelete(
5882 sqlite3_vfs *NotUsed, /* VFS containing this as the xDelete method */
5883 const char *zPath, /* Name of file to be deleted */
5884 int dirSync /* If true, fsync() directory after deleting file */
5885){
danielk1977fee2d252007-08-18 10:59:19 +00005886 int rc = SQLITE_OK;
danielk1977397d65f2008-11-19 11:35:39 +00005887 UNUSED_PARAMETER(NotUsed);
danielk1977b4b47412007-08-17 15:53:36 +00005888 SimulateIOError(return SQLITE_IOERR_DELETE);
dan9fc5b4a2012-11-09 20:17:26 +00005889 if( osUnlink(zPath)==(-1) ){
drhbd945542014-08-13 11:39:42 +00005890 if( errno==ENOENT
5891#if OS_VXWORKS
drh19541f32014-09-01 13:37:55 +00005892 || osAccess(zPath,0)!=0
drhbd945542014-08-13 11:39:42 +00005893#endif
5894 ){
dan9fc5b4a2012-11-09 20:17:26 +00005895 rc = SQLITE_IOERR_DELETE_NOENT;
5896 }else{
drhb4308162012-11-09 21:40:02 +00005897 rc = unixLogError(SQLITE_IOERR_DELETE, "unlink", zPath);
dan9fc5b4a2012-11-09 20:17:26 +00005898 }
drhb4308162012-11-09 21:40:02 +00005899 return rc;
drh5d4feff2010-07-14 01:45:22 +00005900 }
danielk1977d39fa702008-10-16 13:27:40 +00005901#ifndef SQLITE_DISABLE_DIRSYNC
drhe3495192012-01-05 16:07:30 +00005902 if( (dirSync & 1)!=0 ){
danielk1977fee2d252007-08-18 10:59:19 +00005903 int fd;
drh90315a22011-08-10 01:52:12 +00005904 rc = osOpenDirectory(zPath, &fd);
danielk1977fee2d252007-08-18 10:59:19 +00005905 if( rc==SQLITE_OK ){
drh6d258992016-02-04 09:48:12 +00005906 if( full_fsync(fd,0,0) ){
dane18d4952011-02-21 11:46:24 +00005907 rc = unixLogError(SQLITE_IOERR_DIR_FSYNC, "fsync", zPath);
danielk1977fee2d252007-08-18 10:59:19 +00005908 }
drh0e9365c2011-03-02 02:08:13 +00005909 robust_close(0, fd, __LINE__);
drhacb6b282015-11-26 10:37:05 +00005910 }else{
5911 assert( rc==SQLITE_CANTOPEN );
drh1ee6f742011-08-23 20:11:32 +00005912 rc = SQLITE_OK;
danielk1977fee2d252007-08-18 10:59:19 +00005913 }
5914 }
danielk1977d138dd82008-10-15 16:02:48 +00005915#endif
danielk1977fee2d252007-08-18 10:59:19 +00005916 return rc;
danielk1977b4b47412007-08-17 15:53:36 +00005917}
5918
danielk197790949c22007-08-17 16:50:38 +00005919/*
mistachkin48864df2013-03-21 21:20:32 +00005920** Test the existence of or access permissions of file zPath. The
danielk197790949c22007-08-17 16:50:38 +00005921** test performed depends on the value of flags:
5922**
5923** SQLITE_ACCESS_EXISTS: Return 1 if the file exists
5924** SQLITE_ACCESS_READWRITE: Return 1 if the file is read and writable.
5925** SQLITE_ACCESS_READONLY: Return 1 if the file is readable.
5926**
5927** Otherwise return 0.
5928*/
danielk1977861f7452008-06-05 11:39:11 +00005929static int unixAccess(
drh6b9d6dd2008-12-03 19:34:47 +00005930 sqlite3_vfs *NotUsed, /* The VFS containing this xAccess method */
5931 const char *zPath, /* Path of the file to examine */
5932 int flags, /* What do we want to learn about the zPath file? */
5933 int *pResOut /* Write result boolean here */
danielk1977861f7452008-06-05 11:39:11 +00005934){
danielk1977397d65f2008-11-19 11:35:39 +00005935 UNUSED_PARAMETER(NotUsed);
danielk1977861f7452008-06-05 11:39:11 +00005936 SimulateIOError( return SQLITE_IOERR_ACCESS; );
drhd260b5b2015-11-25 18:03:33 +00005937 assert( pResOut!=0 );
danielk1977b4b47412007-08-17 15:53:36 +00005938
drhd260b5b2015-11-25 18:03:33 +00005939 /* The spec says there are three possible values for flags. But only
5940 ** two of them are actually used */
5941 assert( flags==SQLITE_ACCESS_EXISTS || flags==SQLITE_ACCESS_READWRITE );
5942
5943 if( flags==SQLITE_ACCESS_EXISTS ){
dan83acd422010-06-18 11:10:06 +00005944 struct stat buf;
drhd260b5b2015-11-25 18:03:33 +00005945 *pResOut = (0==osStat(zPath, &buf) && buf.st_size>0);
5946 }else{
5947 *pResOut = osAccess(zPath, W_OK|R_OK)==0;
dan83acd422010-06-18 11:10:06 +00005948 }
danielk1977861f7452008-06-05 11:39:11 +00005949 return SQLITE_OK;
danielk1977b4b47412007-08-17 15:53:36 +00005950}
5951
danielk1977b4b47412007-08-17 15:53:36 +00005952/*
danielk1977b4b47412007-08-17 15:53:36 +00005953**
danielk1977b4b47412007-08-17 15:53:36 +00005954*/
dane88ec182016-01-25 17:04:48 +00005955static int mkFullPathname(
dancaf6b152016-01-25 18:05:49 +00005956 const char *zPath, /* Input path */
5957 char *zOut, /* Output buffer */
dane88ec182016-01-25 17:04:48 +00005958 int nOut /* Allocated size of buffer zOut */
danielk1977adfb9b02007-09-17 07:02:56 +00005959){
dancaf6b152016-01-25 18:05:49 +00005960 int nPath = sqlite3Strlen30(zPath);
5961 int iOff = 0;
5962 if( zPath[0]!='/' ){
5963 if( osGetcwd(zOut, nOut-2)==0 ){
dane18d4952011-02-21 11:46:24 +00005964 return unixLogError(SQLITE_CANTOPEN_BKPT, "getcwd", zPath);
danielk1977b4b47412007-08-17 15:53:36 +00005965 }
dancaf6b152016-01-25 18:05:49 +00005966 iOff = sqlite3Strlen30(zOut);
5967 zOut[iOff++] = '/';
danielk1977b4b47412007-08-17 15:53:36 +00005968 }
dan23496702016-01-26 13:56:42 +00005969 if( (iOff+nPath+1)>nOut ){
5970 /* SQLite assumes that xFullPathname() nul-terminates the output buffer
5971 ** even if it returns an error. */
5972 zOut[iOff] = '\0';
5973 return SQLITE_CANTOPEN_BKPT;
5974 }
dancaf6b152016-01-25 18:05:49 +00005975 sqlite3_snprintf(nOut-iOff, &zOut[iOff], "%s", zPath);
danielk1977b4b47412007-08-17 15:53:36 +00005976 return SQLITE_OK;
danielk1977b4b47412007-08-17 15:53:36 +00005977}
5978
dane88ec182016-01-25 17:04:48 +00005979/*
5980** Turn a relative pathname into a full pathname. The relative path
5981** is stored as a nul-terminated string in the buffer pointed to by
5982** zPath.
5983**
5984** zOut points to a buffer of at least sqlite3_vfs.mxPathname bytes
5985** (in this case, MAX_PATHNAME bytes). The full-path is written to
5986** this buffer before returning.
5987*/
5988static int unixFullPathname(
5989 sqlite3_vfs *pVfs, /* Pointer to vfs object */
5990 const char *zPath, /* Possibly relative input path */
5991 int nOut, /* Size of output buffer in bytes */
5992 char *zOut /* Output buffer */
5993){
danaf1b36b2016-01-25 18:43:05 +00005994#if !defined(HAVE_READLINK) || !defined(HAVE_LSTAT)
dancaf6b152016-01-25 18:05:49 +00005995 return mkFullPathname(zPath, zOut, nOut);
dane88ec182016-01-25 17:04:48 +00005996#else
5997 int rc = SQLITE_OK;
5998 int nByte;
dancaf6b152016-01-25 18:05:49 +00005999 int nLink = 1; /* Number of symbolic links followed so far */
dane88ec182016-01-25 17:04:48 +00006000 const char *zIn = zPath; /* Input path for each iteration of loop */
6001 char *zDel = 0;
6002
6003 assert( pVfs->mxPathname==MAX_PATHNAME );
6004 UNUSED_PARAMETER(pVfs);
6005
6006 /* It's odd to simulate an io-error here, but really this is just
6007 ** using the io-error infrastructure to test that SQLite handles this
6008 ** function failing. This function could fail if, for example, the
6009 ** current working directory has been unlinked.
6010 */
6011 SimulateIOError( return SQLITE_ERROR );
6012
6013 do {
6014
dancaf6b152016-01-25 18:05:49 +00006015 /* Call stat() on path zIn. Set bLink to true if the path is a symbolic
6016 ** link, or false otherwise. */
6017 int bLink = 0;
6018 struct stat buf;
6019 if( osLstat(zIn, &buf)!=0 ){
6020 if( errno!=ENOENT ){
danaf1b36b2016-01-25 18:43:05 +00006021 rc = unixLogError(SQLITE_CANTOPEN_BKPT, "lstat", zIn);
dane88ec182016-01-25 17:04:48 +00006022 }
dane88ec182016-01-25 17:04:48 +00006023 }else{
dancaf6b152016-01-25 18:05:49 +00006024 bLink = S_ISLNK(buf.st_mode);
6025 }
6026
6027 if( bLink ){
dane88ec182016-01-25 17:04:48 +00006028 if( zDel==0 ){
6029 zDel = sqlite3_malloc(nOut);
mistachkinfad30392016-02-13 23:43:46 +00006030 if( zDel==0 ) rc = SQLITE_NOMEM_BKPT;
dancaf6b152016-01-25 18:05:49 +00006031 }else if( ++nLink>SQLITE_MAX_SYMLINKS ){
6032 rc = SQLITE_CANTOPEN_BKPT;
dane88ec182016-01-25 17:04:48 +00006033 }
dancaf6b152016-01-25 18:05:49 +00006034
6035 if( rc==SQLITE_OK ){
6036 nByte = osReadlink(zIn, zDel, nOut-1);
6037 if( nByte<0 ){
6038 rc = unixLogError(SQLITE_CANTOPEN_BKPT, "readlink", zIn);
dan23496702016-01-26 13:56:42 +00006039 }else{
6040 if( zDel[0]!='/' ){
6041 int n;
6042 for(n = sqlite3Strlen30(zIn); n>0 && zIn[n-1]!='/'; n--);
6043 if( nByte+n+1>nOut ){
6044 rc = SQLITE_CANTOPEN_BKPT;
6045 }else{
6046 memmove(&zDel[n], zDel, nByte+1);
6047 memcpy(zDel, zIn, n);
6048 nByte += n;
6049 }
dancaf6b152016-01-25 18:05:49 +00006050 }
6051 zDel[nByte] = '\0';
6052 }
6053 }
6054
6055 zIn = zDel;
dane88ec182016-01-25 17:04:48 +00006056 }
6057
dan23496702016-01-26 13:56:42 +00006058 assert( rc!=SQLITE_OK || zIn!=zOut || zIn[0]=='/' );
6059 if( rc==SQLITE_OK && zIn!=zOut ){
dancaf6b152016-01-25 18:05:49 +00006060 rc = mkFullPathname(zIn, zOut, nOut);
dane88ec182016-01-25 17:04:48 +00006061 }
dancaf6b152016-01-25 18:05:49 +00006062 if( bLink==0 ) break;
6063 zIn = zOut;
6064 }while( rc==SQLITE_OK );
dane88ec182016-01-25 17:04:48 +00006065
6066 sqlite3_free(zDel);
6067 return rc;
danaf1b36b2016-01-25 18:43:05 +00006068#endif /* HAVE_READLINK && HAVE_LSTAT */
dane88ec182016-01-25 17:04:48 +00006069}
6070
drh0ccebe72005-06-07 22:22:50 +00006071
drh761df872006-12-21 01:29:22 +00006072#ifndef SQLITE_OMIT_LOAD_EXTENSION
6073/*
6074** Interfaces for opening a shared library, finding entry points
6075** within the shared library, and closing the shared library.
6076*/
6077#include <dlfcn.h>
danielk1977397d65f2008-11-19 11:35:39 +00006078static void *unixDlOpen(sqlite3_vfs *NotUsed, const char *zFilename){
6079 UNUSED_PARAMETER(NotUsed);
drh761df872006-12-21 01:29:22 +00006080 return dlopen(zFilename, RTLD_NOW | RTLD_GLOBAL);
6081}
danielk197795c8a542007-09-01 06:51:27 +00006082
6083/*
6084** SQLite calls this function immediately after a call to unixDlSym() or
6085** unixDlOpen() fails (returns a null pointer). If a more detailed error
6086** message is available, it is written to zBufOut. If no error message
6087** is available, zBufOut is left unmodified and SQLite uses a default
6088** error message.
6089*/
danielk1977397d65f2008-11-19 11:35:39 +00006090static void unixDlError(sqlite3_vfs *NotUsed, int nBuf, char *zBufOut){
dan32390532010-11-29 18:36:22 +00006091 const char *zErr;
danielk1977397d65f2008-11-19 11:35:39 +00006092 UNUSED_PARAMETER(NotUsed);
drh6c7d5c52008-11-21 20:32:33 +00006093 unixEnterMutex();
danielk1977b4b47412007-08-17 15:53:36 +00006094 zErr = dlerror();
6095 if( zErr ){
drh153c62c2007-08-24 03:51:33 +00006096 sqlite3_snprintf(nBuf, zBufOut, "%s", zErr);
danielk1977b4b47412007-08-17 15:53:36 +00006097 }
drh6c7d5c52008-11-21 20:32:33 +00006098 unixLeaveMutex();
danielk1977b4b47412007-08-17 15:53:36 +00006099}
drh1875f7a2008-12-08 18:19:17 +00006100static void (*unixDlSym(sqlite3_vfs *NotUsed, void *p, const char*zSym))(void){
6101 /*
6102 ** GCC with -pedantic-errors says that C90 does not allow a void* to be
6103 ** cast into a pointer to a function. And yet the library dlsym() routine
6104 ** returns a void* which is really a pointer to a function. So how do we
6105 ** use dlsym() with -pedantic-errors?
6106 **
6107 ** Variable x below is defined to be a pointer to a function taking
6108 ** parameters void* and const char* and returning a pointer to a function.
6109 ** We initialize x by assigning it a pointer to the dlsym() function.
6110 ** (That assignment requires a cast.) Then we call the function that
6111 ** x points to.
6112 **
6113 ** This work-around is unlikely to work correctly on any system where
6114 ** you really cannot cast a function pointer into void*. But then, on the
6115 ** other hand, dlsym() will not work on such a system either, so we have
6116 ** not really lost anything.
6117 */
6118 void (*(*x)(void*,const char*))(void);
danielk1977397d65f2008-11-19 11:35:39 +00006119 UNUSED_PARAMETER(NotUsed);
drh1875f7a2008-12-08 18:19:17 +00006120 x = (void(*(*)(void*,const char*))(void))dlsym;
6121 return (*x)(p, zSym);
drh761df872006-12-21 01:29:22 +00006122}
danielk1977397d65f2008-11-19 11:35:39 +00006123static void unixDlClose(sqlite3_vfs *NotUsed, void *pHandle){
6124 UNUSED_PARAMETER(NotUsed);
danielk1977b4b47412007-08-17 15:53:36 +00006125 dlclose(pHandle);
drh761df872006-12-21 01:29:22 +00006126}
danielk1977b4b47412007-08-17 15:53:36 +00006127#else /* if SQLITE_OMIT_LOAD_EXTENSION is defined: */
6128 #define unixDlOpen 0
6129 #define unixDlError 0
6130 #define unixDlSym 0
6131 #define unixDlClose 0
6132#endif
6133
6134/*
danielk197790949c22007-08-17 16:50:38 +00006135** Write nBuf bytes of random data to the supplied buffer zBuf.
drhbbd42a62004-05-22 17:41:58 +00006136*/
danielk1977397d65f2008-11-19 11:35:39 +00006137static int unixRandomness(sqlite3_vfs *NotUsed, int nBuf, char *zBuf){
6138 UNUSED_PARAMETER(NotUsed);
danielk197700e13612008-11-17 19:18:54 +00006139 assert((size_t)nBuf>=(sizeof(time_t)+sizeof(int)));
danielk197790949c22007-08-17 16:50:38 +00006140
drhbbd42a62004-05-22 17:41:58 +00006141 /* We have to initialize zBuf to prevent valgrind from reporting
6142 ** errors. The reports issued by valgrind are incorrect - we would
6143 ** prefer that the randomness be increased by making use of the
6144 ** uninitialized space in zBuf - but valgrind errors tend to worry
6145 ** some users. Rather than argue, it seems easier just to initialize
6146 ** the whole array and silence valgrind, even if that means less randomness
6147 ** in the random seed.
6148 **
6149 ** When testing, initializing zBuf[] to zero is all we do. That means
drhf1a221e2006-01-15 17:27:17 +00006150 ** that we always use the same random number sequence. This makes the
drhbbd42a62004-05-22 17:41:58 +00006151 ** tests repeatable.
6152 */
danielk1977b4b47412007-08-17 15:53:36 +00006153 memset(zBuf, 0, nBuf);
drh5ac93652015-03-21 20:59:43 +00006154 randomnessPid = osGetpid(0);
drh6a412b82015-04-30 12:31:49 +00006155#if !defined(SQLITE_TEST) && !defined(SQLITE_OMIT_RANDOMNESS)
drhbbd42a62004-05-22 17:41:58 +00006156 {
drhb00d8622014-01-01 15:18:36 +00006157 int fd, got;
drhad4f1e52011-03-04 15:43:57 +00006158 fd = robust_open("/dev/urandom", O_RDONLY, 0);
drh842b8642005-01-21 17:53:17 +00006159 if( fd<0 ){
drh07397232006-01-06 14:46:46 +00006160 time_t t;
6161 time(&t);
danielk197790949c22007-08-17 16:50:38 +00006162 memcpy(zBuf, &t, sizeof(t));
drhb00d8622014-01-01 15:18:36 +00006163 memcpy(&zBuf[sizeof(t)], &randomnessPid, sizeof(randomnessPid));
6164 assert( sizeof(t)+sizeof(randomnessPid)<=(size_t)nBuf );
6165 nBuf = sizeof(t) + sizeof(randomnessPid);
drh842b8642005-01-21 17:53:17 +00006166 }else{
drhc18b4042012-02-10 03:10:27 +00006167 do{ got = osRead(fd, zBuf, nBuf); }while( got<0 && errno==EINTR );
drh0e9365c2011-03-02 02:08:13 +00006168 robust_close(0, fd, __LINE__);
drh842b8642005-01-21 17:53:17 +00006169 }
drhbbd42a62004-05-22 17:41:58 +00006170 }
6171#endif
drh72cbd072008-10-14 17:58:38 +00006172 return nBuf;
drhbbd42a62004-05-22 17:41:58 +00006173}
6174
danielk1977b4b47412007-08-17 15:53:36 +00006175
drhbbd42a62004-05-22 17:41:58 +00006176/*
6177** Sleep for a little while. Return the amount of time slept.
danielk1977b4b47412007-08-17 15:53:36 +00006178** The argument is the number of microseconds we want to sleep.
drh4a50aac2007-08-23 02:47:53 +00006179** The return value is the number of microseconds of sleep actually
6180** requested from the underlying operating system, a number which
6181** might be greater than or equal to the argument, but not less
6182** than the argument.
drhbbd42a62004-05-22 17:41:58 +00006183*/
danielk1977397d65f2008-11-19 11:35:39 +00006184static int unixSleep(sqlite3_vfs *NotUsed, int microseconds){
drh6c7d5c52008-11-21 20:32:33 +00006185#if OS_VXWORKS
chw97185482008-11-17 08:05:31 +00006186 struct timespec sp;
6187
6188 sp.tv_sec = microseconds / 1000000;
6189 sp.tv_nsec = (microseconds % 1000000) * 1000;
6190 nanosleep(&sp, NULL);
drhd43fe202009-03-01 22:29:20 +00006191 UNUSED_PARAMETER(NotUsed);
danielk1977397d65f2008-11-19 11:35:39 +00006192 return microseconds;
6193#elif defined(HAVE_USLEEP) && HAVE_USLEEP
danielk1977b4b47412007-08-17 15:53:36 +00006194 usleep(microseconds);
drhd43fe202009-03-01 22:29:20 +00006195 UNUSED_PARAMETER(NotUsed);
danielk1977b4b47412007-08-17 15:53:36 +00006196 return microseconds;
drhbbd42a62004-05-22 17:41:58 +00006197#else
danielk1977b4b47412007-08-17 15:53:36 +00006198 int seconds = (microseconds+999999)/1000000;
6199 sleep(seconds);
drhd43fe202009-03-01 22:29:20 +00006200 UNUSED_PARAMETER(NotUsed);
drh4a50aac2007-08-23 02:47:53 +00006201 return seconds*1000000;
drha3fad6f2006-01-18 14:06:37 +00006202#endif
drh88f474a2006-01-02 20:00:12 +00006203}
6204
6205/*
drh6b9d6dd2008-12-03 19:34:47 +00006206** The following variable, if set to a non-zero value, is interpreted as
6207** the number of seconds since 1970 and is used to set the result of
6208** sqlite3OsCurrentTime() during testing.
drhbbd42a62004-05-22 17:41:58 +00006209*/
6210#ifdef SQLITE_TEST
drh6b9d6dd2008-12-03 19:34:47 +00006211int sqlite3_current_time = 0; /* Fake system time in seconds since 1970. */
drhbbd42a62004-05-22 17:41:58 +00006212#endif
6213
6214/*
drhb7e8ea22010-05-03 14:32:30 +00006215** Find the current time (in Universal Coordinated Time). Write into *piNow
6216** the current time and date as a Julian Day number times 86_400_000. In
6217** other words, write into *piNow the number of milliseconds since the Julian
6218** epoch of noon in Greenwich on November 24, 4714 B.C according to the
6219** proleptic Gregorian calendar.
6220**
drh31702252011-10-12 23:13:43 +00006221** On success, return SQLITE_OK. Return SQLITE_ERROR if the time and date
6222** cannot be found.
drhb7e8ea22010-05-03 14:32:30 +00006223*/
6224static int unixCurrentTimeInt64(sqlite3_vfs *NotUsed, sqlite3_int64 *piNow){
6225 static const sqlite3_int64 unixEpoch = 24405875*(sqlite3_int64)8640000;
drh31702252011-10-12 23:13:43 +00006226 int rc = SQLITE_OK;
drhb7e8ea22010-05-03 14:32:30 +00006227#if defined(NO_GETTOD)
6228 time_t t;
6229 time(&t);
dan15eac4e2010-11-22 17:26:07 +00006230 *piNow = ((sqlite3_int64)t)*1000 + unixEpoch;
drhb7e8ea22010-05-03 14:32:30 +00006231#elif OS_VXWORKS
6232 struct timespec sNow;
6233 clock_gettime(CLOCK_REALTIME, &sNow);
6234 *piNow = unixEpoch + 1000*(sqlite3_int64)sNow.tv_sec + sNow.tv_nsec/1000000;
6235#else
6236 struct timeval sNow;
drh970942e2015-11-25 23:13:14 +00006237 (void)gettimeofday(&sNow, 0); /* Cannot fail given valid arguments */
6238 *piNow = unixEpoch + 1000*(sqlite3_int64)sNow.tv_sec + sNow.tv_usec/1000;
drhb7e8ea22010-05-03 14:32:30 +00006239#endif
6240
6241#ifdef SQLITE_TEST
6242 if( sqlite3_current_time ){
6243 *piNow = 1000*(sqlite3_int64)sqlite3_current_time + unixEpoch;
6244 }
6245#endif
6246 UNUSED_PARAMETER(NotUsed);
drh31702252011-10-12 23:13:43 +00006247 return rc;
drhb7e8ea22010-05-03 14:32:30 +00006248}
6249
drhc3dfa5e2016-01-22 19:44:03 +00006250#ifndef SQLITE_OMIT_DEPRECATED
drhb7e8ea22010-05-03 14:32:30 +00006251/*
drhbbd42a62004-05-22 17:41:58 +00006252** Find the current time (in Universal Coordinated Time). Write the
6253** current time and date as a Julian Day number into *prNow and
6254** return 0. Return 1 if the time and date cannot be found.
6255*/
danielk1977397d65f2008-11-19 11:35:39 +00006256static int unixCurrentTime(sqlite3_vfs *NotUsed, double *prNow){
drhb87a6662011-10-13 01:01:14 +00006257 sqlite3_int64 i = 0;
drh31702252011-10-12 23:13:43 +00006258 int rc;
drhff828942010-06-26 21:34:06 +00006259 UNUSED_PARAMETER(NotUsed);
drh31702252011-10-12 23:13:43 +00006260 rc = unixCurrentTimeInt64(0, &i);
drh0dcb0a72010-05-03 18:22:52 +00006261 *prNow = i/86400000.0;
drh31702252011-10-12 23:13:43 +00006262 return rc;
drhbbd42a62004-05-22 17:41:58 +00006263}
drh5337dac2015-11-25 15:15:03 +00006264#else
6265# define unixCurrentTime 0
6266#endif
danielk1977b4b47412007-08-17 15:53:36 +00006267
drh6b9d6dd2008-12-03 19:34:47 +00006268/*
drh1b9f2142016-03-17 16:01:23 +00006269** The xGetLastError() method is designed to return a better
6270** low-level error message when operating-system problems come up
6271** during SQLite operation. Only the integer return code is currently
6272** used.
drh6b9d6dd2008-12-03 19:34:47 +00006273*/
danielk1977397d65f2008-11-19 11:35:39 +00006274static int unixGetLastError(sqlite3_vfs *NotUsed, int NotUsed2, char *NotUsed3){
6275 UNUSED_PARAMETER(NotUsed);
6276 UNUSED_PARAMETER(NotUsed2);
6277 UNUSED_PARAMETER(NotUsed3);
drh1b9f2142016-03-17 16:01:23 +00006278 return errno;
danielk1977bcb97fe2008-06-06 15:49:29 +00006279}
6280
drhf2424c52010-04-26 00:04:55 +00006281
6282/*
drh734c9862008-11-28 15:37:20 +00006283************************ End of sqlite3_vfs methods ***************************
6284******************************************************************************/
6285
drh715ff302008-12-03 22:32:44 +00006286/******************************************************************************
6287************************** Begin Proxy Locking ********************************
6288**
6289** Proxy locking is a "uber-locking-method" in this sense: It uses the
6290** other locking methods on secondary lock files. Proxy locking is a
6291** meta-layer over top of the primitive locking implemented above. For
6292** this reason, the division that implements of proxy locking is deferred
6293** until late in the file (here) after all of the other I/O methods have
6294** been defined - so that the primitive locking methods are available
6295** as services to help with the implementation of proxy locking.
6296**
6297****
6298**
6299** The default locking schemes in SQLite use byte-range locks on the
6300** database file to coordinate safe, concurrent access by multiple readers
6301** and writers [http://sqlite.org/lockingv3.html]. The five file locking
6302** states (UNLOCKED, PENDING, SHARED, RESERVED, EXCLUSIVE) are implemented
6303** as POSIX read & write locks over fixed set of locations (via fsctl),
6304** on AFP and SMB only exclusive byte-range locks are available via fsctl
6305** with _IOWR('z', 23, struct ByteRangeLockPB2) to track the same 5 states.
6306** To simulate a F_RDLCK on the shared range, on AFP a randomly selected
6307** address in the shared range is taken for a SHARED lock, the entire
6308** shared range is taken for an EXCLUSIVE lock):
6309**
drhf2f105d2012-08-20 15:53:54 +00006310** PENDING_BYTE 0x40000000
drh715ff302008-12-03 22:32:44 +00006311** RESERVED_BYTE 0x40000001
6312** SHARED_RANGE 0x40000002 -> 0x40000200
6313**
6314** This works well on the local file system, but shows a nearly 100x
6315** slowdown in read performance on AFP because the AFP client disables
6316** the read cache when byte-range locks are present. Enabling the read
6317** cache exposes a cache coherency problem that is present on all OS X
6318** supported network file systems. NFS and AFP both observe the
6319** close-to-open semantics for ensuring cache coherency
6320** [http://nfs.sourceforge.net/#faq_a8], which does not effectively
6321** address the requirements for concurrent database access by multiple
6322** readers and writers
6323** [http://www.nabble.com/SQLite-on-NFS-cache-coherency-td15655701.html].
6324**
6325** To address the performance and cache coherency issues, proxy file locking
6326** changes the way database access is controlled by limiting access to a
6327** single host at a time and moving file locks off of the database file
6328** and onto a proxy file on the local file system.
6329**
6330**
6331** Using proxy locks
6332** -----------------
6333**
6334** C APIs
6335**
drh4bf66fd2015-02-19 02:43:02 +00006336** sqlite3_file_control(db, dbname, SQLITE_FCNTL_SET_LOCKPROXYFILE,
drh715ff302008-12-03 22:32:44 +00006337** <proxy_path> | ":auto:");
drh4bf66fd2015-02-19 02:43:02 +00006338** sqlite3_file_control(db, dbname, SQLITE_FCNTL_GET_LOCKPROXYFILE,
6339** &<proxy_path>);
drh715ff302008-12-03 22:32:44 +00006340**
6341**
6342** SQL pragmas
6343**
6344** PRAGMA [database.]lock_proxy_file=<proxy_path> | :auto:
6345** PRAGMA [database.]lock_proxy_file
6346**
6347** Specifying ":auto:" means that if there is a conch file with a matching
6348** host ID in it, the proxy path in the conch file will be used, otherwise
6349** a proxy path based on the user's temp dir
6350** (via confstr(_CS_DARWIN_USER_TEMP_DIR,...)) will be used and the
6351** actual proxy file name is generated from the name and path of the
6352** database file. For example:
6353**
6354** For database path "/Users/me/foo.db"
6355** The lock path will be "<tmpdir>/sqliteplocks/_Users_me_foo.db:auto:")
6356**
6357** Once a lock proxy is configured for a database connection, it can not
6358** be removed, however it may be switched to a different proxy path via
6359** the above APIs (assuming the conch file is not being held by another
6360** connection or process).
6361**
6362**
6363** How proxy locking works
6364** -----------------------
6365**
6366** Proxy file locking relies primarily on two new supporting files:
6367**
6368** * conch file to limit access to the database file to a single host
6369** at a time
6370**
6371** * proxy file to act as a proxy for the advisory locks normally
6372** taken on the database
6373**
6374** The conch file - to use a proxy file, sqlite must first "hold the conch"
6375** by taking an sqlite-style shared lock on the conch file, reading the
6376** contents and comparing the host's unique host ID (see below) and lock
6377** proxy path against the values stored in the conch. The conch file is
6378** stored in the same directory as the database file and the file name
6379** is patterned after the database file name as ".<databasename>-conch".
peter.d.reid60ec9142014-09-06 16:39:46 +00006380** If the conch file does not exist, or its contents do not match the
drh715ff302008-12-03 22:32:44 +00006381** host ID and/or proxy path, then the lock is escalated to an exclusive
6382** lock and the conch file contents is updated with the host ID and proxy
6383** path and the lock is downgraded to a shared lock again. If the conch
6384** is held by another process (with a shared lock), the exclusive lock
6385** will fail and SQLITE_BUSY is returned.
6386**
6387** The proxy file - a single-byte file used for all advisory file locks
6388** normally taken on the database file. This allows for safe sharing
6389** of the database file for multiple readers and writers on the same
6390** host (the conch ensures that they all use the same local lock file).
6391**
drh715ff302008-12-03 22:32:44 +00006392** Requesting the lock proxy does not immediately take the conch, it is
6393** only taken when the first request to lock database file is made.
6394** This matches the semantics of the traditional locking behavior, where
6395** opening a connection to a database file does not take a lock on it.
6396** The shared lock and an open file descriptor are maintained until
6397** the connection to the database is closed.
6398**
6399** The proxy file and the lock file are never deleted so they only need
6400** to be created the first time they are used.
6401**
6402** Configuration options
6403** ---------------------
6404**
6405** SQLITE_PREFER_PROXY_LOCKING
6406**
6407** Database files accessed on non-local file systems are
6408** automatically configured for proxy locking, lock files are
6409** named automatically using the same logic as
6410** PRAGMA lock_proxy_file=":auto:"
6411**
6412** SQLITE_PROXY_DEBUG
6413**
6414** Enables the logging of error messages during host id file
6415** retrieval and creation
6416**
drh715ff302008-12-03 22:32:44 +00006417** LOCKPROXYDIR
6418**
6419** Overrides the default directory used for lock proxy files that
6420** are named automatically via the ":auto:" setting
6421**
6422** SQLITE_DEFAULT_PROXYDIR_PERMISSIONS
6423**
6424** Permissions to use when creating a directory for storing the
6425** lock proxy files, only used when LOCKPROXYDIR is not set.
6426**
6427**
6428** As mentioned above, when compiled with SQLITE_PREFER_PROXY_LOCKING,
6429** setting the environment variable SQLITE_FORCE_PROXY_LOCKING to 1 will
6430** force proxy locking to be used for every database file opened, and 0
6431** will force automatic proxy locking to be disabled for all database
drh4bf66fd2015-02-19 02:43:02 +00006432** files (explicitly calling the SQLITE_FCNTL_SET_LOCKPROXYFILE pragma or
drh715ff302008-12-03 22:32:44 +00006433** sqlite_file_control API is not affected by SQLITE_FORCE_PROXY_LOCKING).
6434*/
6435
6436/*
6437** Proxy locking is only available on MacOSX
6438*/
drhd2cb50b2009-01-09 21:41:17 +00006439#if defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE
drh715ff302008-12-03 22:32:44 +00006440
drh715ff302008-12-03 22:32:44 +00006441/*
6442** The proxyLockingContext has the path and file structures for the remote
6443** and local proxy files in it
6444*/
6445typedef struct proxyLockingContext proxyLockingContext;
6446struct proxyLockingContext {
6447 unixFile *conchFile; /* Open conch file */
6448 char *conchFilePath; /* Name of the conch file */
6449 unixFile *lockProxy; /* Open proxy lock file */
6450 char *lockProxyPath; /* Name of the proxy lock file */
6451 char *dbPath; /* Name of the open file */
drh7ed97b92010-01-20 13:07:21 +00006452 int conchHeld; /* 1 if the conch is held, -1 if lockless */
drh4bf66fd2015-02-19 02:43:02 +00006453 int nFails; /* Number of conch taking failures */
drh715ff302008-12-03 22:32:44 +00006454 void *oldLockingContext; /* Original lockingcontext to restore on close */
6455 sqlite3_io_methods const *pOldMethod; /* Original I/O methods for close */
6456};
6457
drh7ed97b92010-01-20 13:07:21 +00006458/*
6459** The proxy lock file path for the database at dbPath is written into lPath,
6460** which must point to valid, writable memory large enough for a maxLen length
6461** file path.
drh715ff302008-12-03 22:32:44 +00006462*/
drh715ff302008-12-03 22:32:44 +00006463static int proxyGetLockPath(const char *dbPath, char *lPath, size_t maxLen){
6464 int len;
6465 int dbLen;
6466 int i;
6467
6468#ifdef LOCKPROXYDIR
6469 len = strlcpy(lPath, LOCKPROXYDIR, maxLen);
6470#else
6471# ifdef _CS_DARWIN_USER_TEMP_DIR
6472 {
drh7ed97b92010-01-20 13:07:21 +00006473 if( !confstr(_CS_DARWIN_USER_TEMP_DIR, lPath, maxLen) ){
drh308c2a52010-05-14 11:30:18 +00006474 OSTRACE(("GETLOCKPATH failed %s errno=%d pid=%d\n",
drh5ac93652015-03-21 20:59:43 +00006475 lPath, errno, osGetpid(0)));
drh7ed97b92010-01-20 13:07:21 +00006476 return SQLITE_IOERR_LOCK;
drh715ff302008-12-03 22:32:44 +00006477 }
drh7ed97b92010-01-20 13:07:21 +00006478 len = strlcat(lPath, "sqliteplocks", maxLen);
drh715ff302008-12-03 22:32:44 +00006479 }
6480# else
6481 len = strlcpy(lPath, "/tmp/", maxLen);
6482# endif
6483#endif
6484
6485 if( lPath[len-1]!='/' ){
6486 len = strlcat(lPath, "/", maxLen);
6487 }
6488
6489 /* transform the db path to a unique cache name */
drhea678832008-12-10 19:26:22 +00006490 dbLen = (int)strlen(dbPath);
drh0ab216a2010-07-02 17:10:40 +00006491 for( i=0; i<dbLen && (i+len+7)<(int)maxLen; i++){
drh715ff302008-12-03 22:32:44 +00006492 char c = dbPath[i];
6493 lPath[i+len] = (c=='/')?'_':c;
6494 }
6495 lPath[i+len]='\0';
6496 strlcat(lPath, ":auto:", maxLen);
drh5ac93652015-03-21 20:59:43 +00006497 OSTRACE(("GETLOCKPATH proxy lock path=%s pid=%d\n", lPath, osGetpid(0)));
drh715ff302008-12-03 22:32:44 +00006498 return SQLITE_OK;
6499}
6500
drh7ed97b92010-01-20 13:07:21 +00006501/*
6502 ** Creates the lock file and any missing directories in lockPath
6503 */
6504static int proxyCreateLockPath(const char *lockPath){
6505 int i, len;
6506 char buf[MAXPATHLEN];
6507 int start = 0;
6508
6509 assert(lockPath!=NULL);
6510 /* try to create all the intermediate directories */
6511 len = (int)strlen(lockPath);
6512 buf[0] = lockPath[0];
6513 for( i=1; i<len; i++ ){
6514 if( lockPath[i] == '/' && (i - start > 0) ){
6515 /* only mkdir if leaf dir != "." or "/" or ".." */
6516 if( i-start>2 || (i-start==1 && buf[start] != '.' && buf[start] != '/')
6517 || (i-start==2 && buf[start] != '.' && buf[start+1] != '.') ){
6518 buf[i]='\0';
drh9ef6bc42011-11-04 02:24:02 +00006519 if( osMkdir(buf, SQLITE_DEFAULT_PROXYDIR_PERMISSIONS) ){
drh7ed97b92010-01-20 13:07:21 +00006520 int err=errno;
6521 if( err!=EEXIST ) {
drh308c2a52010-05-14 11:30:18 +00006522 OSTRACE(("CREATELOCKPATH FAILED creating %s, "
drh7ed97b92010-01-20 13:07:21 +00006523 "'%s' proxy lock path=%s pid=%d\n",
drh5ac93652015-03-21 20:59:43 +00006524 buf, strerror(err), lockPath, osGetpid(0)));
drh7ed97b92010-01-20 13:07:21 +00006525 return err;
6526 }
6527 }
6528 }
6529 start=i+1;
6530 }
6531 buf[i] = lockPath[i];
6532 }
drh62aaa6c2015-11-21 17:27:42 +00006533 OSTRACE(("CREATELOCKPATH proxy lock path=%s pid=%d\n",lockPath,osGetpid(0)));
drh7ed97b92010-01-20 13:07:21 +00006534 return 0;
6535}
6536
drh715ff302008-12-03 22:32:44 +00006537/*
6538** Create a new VFS file descriptor (stored in memory obtained from
6539** sqlite3_malloc) and open the file named "path" in the file descriptor.
6540**
6541** The caller is responsible not only for closing the file descriptor
6542** but also for freeing the memory associated with the file descriptor.
6543*/
drh7ed97b92010-01-20 13:07:21 +00006544static int proxyCreateUnixFile(
6545 const char *path, /* path for the new unixFile */
6546 unixFile **ppFile, /* unixFile created and returned by ref */
6547 int islockfile /* if non zero missing dirs will be created */
6548) {
6549 int fd = -1;
drh715ff302008-12-03 22:32:44 +00006550 unixFile *pNew;
6551 int rc = SQLITE_OK;
drh7ed97b92010-01-20 13:07:21 +00006552 int openFlags = O_RDWR | O_CREAT;
drh715ff302008-12-03 22:32:44 +00006553 sqlite3_vfs dummyVfs;
drh7ed97b92010-01-20 13:07:21 +00006554 int terrno = 0;
6555 UnixUnusedFd *pUnused = NULL;
drh715ff302008-12-03 22:32:44 +00006556
drh7ed97b92010-01-20 13:07:21 +00006557 /* 1. first try to open/create the file
6558 ** 2. if that fails, and this is a lock file (not-conch), try creating
6559 ** the parent directories and then try again.
6560 ** 3. if that fails, try to open the file read-only
6561 ** otherwise return BUSY (if lock file) or CANTOPEN for the conch file
6562 */
6563 pUnused = findReusableFd(path, openFlags);
6564 if( pUnused ){
6565 fd = pUnused->fd;
6566 }else{
drhf3cdcdc2015-04-29 16:50:28 +00006567 pUnused = sqlite3_malloc64(sizeof(*pUnused));
drh7ed97b92010-01-20 13:07:21 +00006568 if( !pUnused ){
mistachkinfad30392016-02-13 23:43:46 +00006569 return SQLITE_NOMEM_BKPT;
drh7ed97b92010-01-20 13:07:21 +00006570 }
6571 }
6572 if( fd<0 ){
drh8c815d12012-02-13 20:16:37 +00006573 fd = robust_open(path, openFlags, 0);
drh7ed97b92010-01-20 13:07:21 +00006574 terrno = errno;
6575 if( fd<0 && errno==ENOENT && islockfile ){
6576 if( proxyCreateLockPath(path) == SQLITE_OK ){
drh8c815d12012-02-13 20:16:37 +00006577 fd = robust_open(path, openFlags, 0);
drh7ed97b92010-01-20 13:07:21 +00006578 }
6579 }
6580 }
6581 if( fd<0 ){
6582 openFlags = O_RDONLY;
drh8c815d12012-02-13 20:16:37 +00006583 fd = robust_open(path, openFlags, 0);
drh7ed97b92010-01-20 13:07:21 +00006584 terrno = errno;
6585 }
6586 if( fd<0 ){
6587 if( islockfile ){
6588 return SQLITE_BUSY;
6589 }
6590 switch (terrno) {
6591 case EACCES:
6592 return SQLITE_PERM;
6593 case EIO:
6594 return SQLITE_IOERR_LOCK; /* even though it is the conch */
6595 default:
drh9978c972010-02-23 17:36:32 +00006596 return SQLITE_CANTOPEN_BKPT;
drh7ed97b92010-01-20 13:07:21 +00006597 }
6598 }
6599
drhf3cdcdc2015-04-29 16:50:28 +00006600 pNew = (unixFile *)sqlite3_malloc64(sizeof(*pNew));
drh7ed97b92010-01-20 13:07:21 +00006601 if( pNew==NULL ){
mistachkinfad30392016-02-13 23:43:46 +00006602 rc = SQLITE_NOMEM_BKPT;
drh7ed97b92010-01-20 13:07:21 +00006603 goto end_create_proxy;
drh715ff302008-12-03 22:32:44 +00006604 }
6605 memset(pNew, 0, sizeof(unixFile));
drh7ed97b92010-01-20 13:07:21 +00006606 pNew->openFlags = openFlags;
dan211fb082011-04-01 09:04:36 +00006607 memset(&dummyVfs, 0, sizeof(dummyVfs));
drh1875f7a2008-12-08 18:19:17 +00006608 dummyVfs.pAppData = (void*)&autolockIoFinder;
dan211fb082011-04-01 09:04:36 +00006609 dummyVfs.zName = "dummy";
drh7ed97b92010-01-20 13:07:21 +00006610 pUnused->fd = fd;
6611 pUnused->flags = openFlags;
6612 pNew->pUnused = pUnused;
6613
drhc02a43a2012-01-10 23:18:38 +00006614 rc = fillInUnixFile(&dummyVfs, fd, (sqlite3_file*)pNew, path, 0);
drh7ed97b92010-01-20 13:07:21 +00006615 if( rc==SQLITE_OK ){
6616 *ppFile = pNew;
6617 return SQLITE_OK;
drh715ff302008-12-03 22:32:44 +00006618 }
drh7ed97b92010-01-20 13:07:21 +00006619end_create_proxy:
drh0e9365c2011-03-02 02:08:13 +00006620 robust_close(pNew, fd, __LINE__);
drh7ed97b92010-01-20 13:07:21 +00006621 sqlite3_free(pNew);
6622 sqlite3_free(pUnused);
drh715ff302008-12-03 22:32:44 +00006623 return rc;
6624}
6625
drh7ed97b92010-01-20 13:07:21 +00006626#ifdef SQLITE_TEST
6627/* simulate multiple hosts by creating unique hostid file paths */
6628int sqlite3_hostid_num = 0;
6629#endif
6630
6631#define PROXY_HOSTIDLEN 16 /* conch file host id length */
6632
drh6bca6512015-04-13 23:05:28 +00006633#ifdef HAVE_GETHOSTUUID
drh0ab216a2010-07-02 17:10:40 +00006634/* Not always defined in the headers as it ought to be */
6635extern int gethostuuid(uuid_t id, const struct timespec *wait);
drh6bca6512015-04-13 23:05:28 +00006636#endif
drh0ab216a2010-07-02 17:10:40 +00006637
drh7ed97b92010-01-20 13:07:21 +00006638/* get the host ID via gethostuuid(), pHostID must point to PROXY_HOSTIDLEN
6639** bytes of writable memory.
6640*/
6641static int proxyGetHostID(unsigned char *pHostID, int *pError){
drh7ed97b92010-01-20 13:07:21 +00006642 assert(PROXY_HOSTIDLEN == sizeof(uuid_t));
6643 memset(pHostID, 0, PROXY_HOSTIDLEN);
drh6bca6512015-04-13 23:05:28 +00006644#ifdef HAVE_GETHOSTUUID
drh29ecd8a2010-12-21 00:16:40 +00006645 {
drh4bf66fd2015-02-19 02:43:02 +00006646 struct timespec timeout = {1, 0}; /* 1 sec timeout */
drh29ecd8a2010-12-21 00:16:40 +00006647 if( gethostuuid(pHostID, &timeout) ){
6648 int err = errno;
6649 if( pError ){
6650 *pError = err;
6651 }
6652 return SQLITE_IOERR;
drh7ed97b92010-01-20 13:07:21 +00006653 }
drh7ed97b92010-01-20 13:07:21 +00006654 }
drh3d4435b2011-08-26 20:55:50 +00006655#else
6656 UNUSED_PARAMETER(pError);
drhe8b0c9b2010-09-25 14:13:17 +00006657#endif
drh7ed97b92010-01-20 13:07:21 +00006658#ifdef SQLITE_TEST
6659 /* simulate multiple hosts by creating unique hostid file paths */
6660 if( sqlite3_hostid_num != 0){
6661 pHostID[0] = (char)(pHostID[0] + (char)(sqlite3_hostid_num & 0xFF));
6662 }
6663#endif
6664
6665 return SQLITE_OK;
6666}
6667
6668/* The conch file contains the header, host id and lock file path
6669 */
6670#define PROXY_CONCHVERSION 2 /* 1-byte header, 16-byte host id, path */
6671#define PROXY_HEADERLEN 1 /* conch file header length */
6672#define PROXY_PATHINDEX (PROXY_HEADERLEN+PROXY_HOSTIDLEN)
6673#define PROXY_MAXCONCHLEN (PROXY_HEADERLEN+PROXY_HOSTIDLEN+MAXPATHLEN)
6674
6675/*
6676** Takes an open conch file, copies the contents to a new path and then moves
6677** it back. The newly created file's file descriptor is assigned to the
6678** conch file structure and finally the original conch file descriptor is
6679** closed. Returns zero if successful.
6680*/
6681static int proxyBreakConchLock(unixFile *pFile, uuid_t myHostID){
6682 proxyLockingContext *pCtx = (proxyLockingContext *)pFile->lockingContext;
6683 unixFile *conchFile = pCtx->conchFile;
6684 char tPath[MAXPATHLEN];
6685 char buf[PROXY_MAXCONCHLEN];
6686 char *cPath = pCtx->conchFilePath;
6687 size_t readLen = 0;
6688 size_t pathLen = 0;
6689 char errmsg[64] = "";
6690 int fd = -1;
6691 int rc = -1;
drh0ab216a2010-07-02 17:10:40 +00006692 UNUSED_PARAMETER(myHostID);
drh7ed97b92010-01-20 13:07:21 +00006693
6694 /* create a new path by replace the trailing '-conch' with '-break' */
6695 pathLen = strlcpy(tPath, cPath, MAXPATHLEN);
6696 if( pathLen>MAXPATHLEN || pathLen<6 ||
6697 (strlcpy(&tPath[pathLen-5], "break", 6) != 5) ){
dan0cb3a1e2010-11-29 17:55:18 +00006698 sqlite3_snprintf(sizeof(errmsg),errmsg,"path error (len %d)",(int)pathLen);
drh7ed97b92010-01-20 13:07:21 +00006699 goto end_breaklock;
6700 }
6701 /* read the conch content */
drhe562be52011-03-02 18:01:10 +00006702 readLen = osPread(conchFile->h, buf, PROXY_MAXCONCHLEN, 0);
drh7ed97b92010-01-20 13:07:21 +00006703 if( readLen<PROXY_PATHINDEX ){
dan0cb3a1e2010-11-29 17:55:18 +00006704 sqlite3_snprintf(sizeof(errmsg),errmsg,"read error (len %d)",(int)readLen);
drh7ed97b92010-01-20 13:07:21 +00006705 goto end_breaklock;
6706 }
6707 /* write it out to the temporary break file */
drh8c815d12012-02-13 20:16:37 +00006708 fd = robust_open(tPath, (O_RDWR|O_CREAT|O_EXCL), 0);
drh7ed97b92010-01-20 13:07:21 +00006709 if( fd<0 ){
dan0cb3a1e2010-11-29 17:55:18 +00006710 sqlite3_snprintf(sizeof(errmsg), errmsg, "create failed (%d)", errno);
drh7ed97b92010-01-20 13:07:21 +00006711 goto end_breaklock;
6712 }
drhe562be52011-03-02 18:01:10 +00006713 if( osPwrite(fd, buf, readLen, 0) != (ssize_t)readLen ){
dan0cb3a1e2010-11-29 17:55:18 +00006714 sqlite3_snprintf(sizeof(errmsg), errmsg, "write failed (%d)", errno);
drh7ed97b92010-01-20 13:07:21 +00006715 goto end_breaklock;
6716 }
6717 if( rename(tPath, cPath) ){
dan0cb3a1e2010-11-29 17:55:18 +00006718 sqlite3_snprintf(sizeof(errmsg), errmsg, "rename failed (%d)", errno);
drh7ed97b92010-01-20 13:07:21 +00006719 goto end_breaklock;
6720 }
6721 rc = 0;
6722 fprintf(stderr, "broke stale lock on %s\n", cPath);
drh0e9365c2011-03-02 02:08:13 +00006723 robust_close(pFile, conchFile->h, __LINE__);
drh7ed97b92010-01-20 13:07:21 +00006724 conchFile->h = fd;
6725 conchFile->openFlags = O_RDWR | O_CREAT;
6726
6727end_breaklock:
6728 if( rc ){
6729 if( fd>=0 ){
drh036ac7f2011-08-08 23:18:05 +00006730 osUnlink(tPath);
drh0e9365c2011-03-02 02:08:13 +00006731 robust_close(pFile, fd, __LINE__);
drh7ed97b92010-01-20 13:07:21 +00006732 }
6733 fprintf(stderr, "failed to break stale lock on %s, %s\n", cPath, errmsg);
6734 }
6735 return rc;
6736}
6737
6738/* Take the requested lock on the conch file and break a stale lock if the
6739** host id matches.
6740*/
6741static int proxyConchLock(unixFile *pFile, uuid_t myHostID, int lockType){
6742 proxyLockingContext *pCtx = (proxyLockingContext *)pFile->lockingContext;
6743 unixFile *conchFile = pCtx->conchFile;
6744 int rc = SQLITE_OK;
6745 int nTries = 0;
6746 struct timespec conchModTime;
6747
drh3d4435b2011-08-26 20:55:50 +00006748 memset(&conchModTime, 0, sizeof(conchModTime));
drh7ed97b92010-01-20 13:07:21 +00006749 do {
6750 rc = conchFile->pMethod->xLock((sqlite3_file*)conchFile, lockType);
6751 nTries ++;
6752 if( rc==SQLITE_BUSY ){
6753 /* If the lock failed (busy):
6754 * 1st try: get the mod time of the conch, wait 0.5s and try again.
6755 * 2nd try: fail if the mod time changed or host id is different, wait
6756 * 10 sec and try again
6757 * 3rd try: break the lock unless the mod time has changed.
6758 */
6759 struct stat buf;
drh99ab3b12011-03-02 15:09:07 +00006760 if( osFstat(conchFile->h, &buf) ){
drh4bf66fd2015-02-19 02:43:02 +00006761 storeLastErrno(pFile, errno);
drh7ed97b92010-01-20 13:07:21 +00006762 return SQLITE_IOERR_LOCK;
6763 }
6764
6765 if( nTries==1 ){
6766 conchModTime = buf.st_mtimespec;
6767 usleep(500000); /* wait 0.5 sec and try the lock again*/
6768 continue;
6769 }
6770
6771 assert( nTries>1 );
6772 if( conchModTime.tv_sec != buf.st_mtimespec.tv_sec ||
6773 conchModTime.tv_nsec != buf.st_mtimespec.tv_nsec ){
6774 return SQLITE_BUSY;
6775 }
6776
6777 if( nTries==2 ){
6778 char tBuf[PROXY_MAXCONCHLEN];
drhe562be52011-03-02 18:01:10 +00006779 int len = osPread(conchFile->h, tBuf, PROXY_MAXCONCHLEN, 0);
drh7ed97b92010-01-20 13:07:21 +00006780 if( len<0 ){
drh4bf66fd2015-02-19 02:43:02 +00006781 storeLastErrno(pFile, errno);
drh7ed97b92010-01-20 13:07:21 +00006782 return SQLITE_IOERR_LOCK;
6783 }
6784 if( len>PROXY_PATHINDEX && tBuf[0]==(char)PROXY_CONCHVERSION){
6785 /* don't break the lock if the host id doesn't match */
6786 if( 0!=memcmp(&tBuf[PROXY_HEADERLEN], myHostID, PROXY_HOSTIDLEN) ){
6787 return SQLITE_BUSY;
6788 }
6789 }else{
6790 /* don't break the lock on short read or a version mismatch */
6791 return SQLITE_BUSY;
6792 }
6793 usleep(10000000); /* wait 10 sec and try the lock again */
6794 continue;
6795 }
6796
6797 assert( nTries==3 );
6798 if( 0==proxyBreakConchLock(pFile, myHostID) ){
6799 rc = SQLITE_OK;
6800 if( lockType==EXCLUSIVE_LOCK ){
drhe6d41732015-02-21 00:49:00 +00006801 rc = conchFile->pMethod->xLock((sqlite3_file*)conchFile, SHARED_LOCK);
drh7ed97b92010-01-20 13:07:21 +00006802 }
6803 if( !rc ){
6804 rc = conchFile->pMethod->xLock((sqlite3_file*)conchFile, lockType);
6805 }
6806 }
6807 }
6808 } while( rc==SQLITE_BUSY && nTries<3 );
6809
6810 return rc;
6811}
6812
6813/* Takes the conch by taking a shared lock and read the contents conch, if
drh715ff302008-12-03 22:32:44 +00006814** lockPath is non-NULL, the host ID and lock file path must match. A NULL
6815** lockPath means that the lockPath in the conch file will be used if the
6816** host IDs match, or a new lock path will be generated automatically
6817** and written to the conch file.
6818*/
6819static int proxyTakeConch(unixFile *pFile){
6820 proxyLockingContext *pCtx = (proxyLockingContext *)pFile->lockingContext;
6821
drh7ed97b92010-01-20 13:07:21 +00006822 if( pCtx->conchHeld!=0 ){
drh715ff302008-12-03 22:32:44 +00006823 return SQLITE_OK;
6824 }else{
6825 unixFile *conchFile = pCtx->conchFile;
drh7ed97b92010-01-20 13:07:21 +00006826 uuid_t myHostID;
6827 int pError = 0;
6828 char readBuf[PROXY_MAXCONCHLEN];
drh715ff302008-12-03 22:32:44 +00006829 char lockPath[MAXPATHLEN];
drh7ed97b92010-01-20 13:07:21 +00006830 char *tempLockPath = NULL;
drh715ff302008-12-03 22:32:44 +00006831 int rc = SQLITE_OK;
drh7ed97b92010-01-20 13:07:21 +00006832 int createConch = 0;
6833 int hostIdMatch = 0;
6834 int readLen = 0;
6835 int tryOldLockPath = 0;
6836 int forceNewLockPath = 0;
6837
drh308c2a52010-05-14 11:30:18 +00006838 OSTRACE(("TAKECONCH %d for %s pid=%d\n", conchFile->h,
drh91eb93c2015-03-03 19:56:20 +00006839 (pCtx->lockProxyPath ? pCtx->lockProxyPath : ":auto:"),
drh5ac93652015-03-21 20:59:43 +00006840 osGetpid(0)));
drh715ff302008-12-03 22:32:44 +00006841
drh7ed97b92010-01-20 13:07:21 +00006842 rc = proxyGetHostID(myHostID, &pError);
6843 if( (rc&0xff)==SQLITE_IOERR ){
drh4bf66fd2015-02-19 02:43:02 +00006844 storeLastErrno(pFile, pError);
drh7ed97b92010-01-20 13:07:21 +00006845 goto end_takeconch;
drh715ff302008-12-03 22:32:44 +00006846 }
drh7ed97b92010-01-20 13:07:21 +00006847 rc = proxyConchLock(pFile, myHostID, SHARED_LOCK);
drh715ff302008-12-03 22:32:44 +00006848 if( rc!=SQLITE_OK ){
6849 goto end_takeconch;
6850 }
drh7ed97b92010-01-20 13:07:21 +00006851 /* read the existing conch file */
6852 readLen = seekAndRead((unixFile*)conchFile, 0, readBuf, PROXY_MAXCONCHLEN);
6853 if( readLen<0 ){
6854 /* I/O error: lastErrno set by seekAndRead */
drh4bf66fd2015-02-19 02:43:02 +00006855 storeLastErrno(pFile, conchFile->lastErrno);
drh7ed97b92010-01-20 13:07:21 +00006856 rc = SQLITE_IOERR_READ;
6857 goto end_takeconch;
6858 }else if( readLen<=(PROXY_HEADERLEN+PROXY_HOSTIDLEN) ||
6859 readBuf[0]!=(char)PROXY_CONCHVERSION ){
6860 /* a short read or version format mismatch means we need to create a new
6861 ** conch file.
6862 */
6863 createConch = 1;
6864 }
6865 /* if the host id matches and the lock path already exists in the conch
6866 ** we'll try to use the path there, if we can't open that path, we'll
6867 ** retry with a new auto-generated path
6868 */
6869 do { /* in case we need to try again for an :auto: named lock file */
6870
6871 if( !createConch && !forceNewLockPath ){
6872 hostIdMatch = !memcmp(&readBuf[PROXY_HEADERLEN], myHostID,
6873 PROXY_HOSTIDLEN);
6874 /* if the conch has data compare the contents */
6875 if( !pCtx->lockProxyPath ){
6876 /* for auto-named local lock file, just check the host ID and we'll
6877 ** use the local lock file path that's already in there
6878 */
6879 if( hostIdMatch ){
6880 size_t pathLen = (readLen - PROXY_PATHINDEX);
6881
6882 if( pathLen>=MAXPATHLEN ){
6883 pathLen=MAXPATHLEN-1;
6884 }
6885 memcpy(lockPath, &readBuf[PROXY_PATHINDEX], pathLen);
6886 lockPath[pathLen] = 0;
6887 tempLockPath = lockPath;
6888 tryOldLockPath = 1;
6889 /* create a copy of the lock path if the conch is taken */
6890 goto end_takeconch;
6891 }
6892 }else if( hostIdMatch
6893 && !strncmp(pCtx->lockProxyPath, &readBuf[PROXY_PATHINDEX],
6894 readLen-PROXY_PATHINDEX)
6895 ){
6896 /* conch host and lock path match */
6897 goto end_takeconch;
drh715ff302008-12-03 22:32:44 +00006898 }
drh7ed97b92010-01-20 13:07:21 +00006899 }
6900
6901 /* if the conch isn't writable and doesn't match, we can't take it */
6902 if( (conchFile->openFlags&O_RDWR) == 0 ){
6903 rc = SQLITE_BUSY;
drh715ff302008-12-03 22:32:44 +00006904 goto end_takeconch;
6905 }
drh7ed97b92010-01-20 13:07:21 +00006906
6907 /* either the conch didn't match or we need to create a new one */
drh715ff302008-12-03 22:32:44 +00006908 if( !pCtx->lockProxyPath ){
drh7ed97b92010-01-20 13:07:21 +00006909 proxyGetLockPath(pCtx->dbPath, lockPath, MAXPATHLEN);
6910 tempLockPath = lockPath;
6911 /* create a copy of the lock path _only_ if the conch is taken */
drh715ff302008-12-03 22:32:44 +00006912 }
drh7ed97b92010-01-20 13:07:21 +00006913
6914 /* update conch with host and path (this will fail if other process
6915 ** has a shared lock already), if the host id matches, use the big
6916 ** stick.
drh715ff302008-12-03 22:32:44 +00006917 */
drh7ed97b92010-01-20 13:07:21 +00006918 futimes(conchFile->h, NULL);
6919 if( hostIdMatch && !createConch ){
drh8af6c222010-05-14 12:43:01 +00006920 if( conchFile->pInode && conchFile->pInode->nShared>1 ){
drh7ed97b92010-01-20 13:07:21 +00006921 /* We are trying for an exclusive lock but another thread in this
6922 ** same process is still holding a shared lock. */
6923 rc = SQLITE_BUSY;
6924 } else {
6925 rc = proxyConchLock(pFile, myHostID, EXCLUSIVE_LOCK);
drh715ff302008-12-03 22:32:44 +00006926 }
drh715ff302008-12-03 22:32:44 +00006927 }else{
drh4bf66fd2015-02-19 02:43:02 +00006928 rc = proxyConchLock(pFile, myHostID, EXCLUSIVE_LOCK);
drh715ff302008-12-03 22:32:44 +00006929 }
drh7ed97b92010-01-20 13:07:21 +00006930 if( rc==SQLITE_OK ){
6931 char writeBuffer[PROXY_MAXCONCHLEN];
6932 int writeSize = 0;
6933
6934 writeBuffer[0] = (char)PROXY_CONCHVERSION;
6935 memcpy(&writeBuffer[PROXY_HEADERLEN], myHostID, PROXY_HOSTIDLEN);
6936 if( pCtx->lockProxyPath!=NULL ){
drh4bf66fd2015-02-19 02:43:02 +00006937 strlcpy(&writeBuffer[PROXY_PATHINDEX], pCtx->lockProxyPath,
6938 MAXPATHLEN);
drh7ed97b92010-01-20 13:07:21 +00006939 }else{
6940 strlcpy(&writeBuffer[PROXY_PATHINDEX], tempLockPath, MAXPATHLEN);
6941 }
6942 writeSize = PROXY_PATHINDEX + strlen(&writeBuffer[PROXY_PATHINDEX]);
drhff812312011-02-23 13:33:46 +00006943 robust_ftruncate(conchFile->h, writeSize);
drh7ed97b92010-01-20 13:07:21 +00006944 rc = unixWrite((sqlite3_file *)conchFile, writeBuffer, writeSize, 0);
drh6d258992016-02-04 09:48:12 +00006945 full_fsync(conchFile->h,0,0);
drh7ed97b92010-01-20 13:07:21 +00006946 /* If we created a new conch file (not just updated the contents of a
6947 ** valid conch file), try to match the permissions of the database
6948 */
6949 if( rc==SQLITE_OK && createConch ){
6950 struct stat buf;
drh99ab3b12011-03-02 15:09:07 +00006951 int err = osFstat(pFile->h, &buf);
drh7ed97b92010-01-20 13:07:21 +00006952 if( err==0 ){
6953 mode_t cmode = buf.st_mode&(S_IRUSR|S_IWUSR | S_IRGRP|S_IWGRP |
6954 S_IROTH|S_IWOTH);
6955 /* try to match the database file R/W permissions, ignore failure */
6956#ifndef SQLITE_PROXY_DEBUG
drhe562be52011-03-02 18:01:10 +00006957 osFchmod(conchFile->h, cmode);
drh7ed97b92010-01-20 13:07:21 +00006958#else
drhff812312011-02-23 13:33:46 +00006959 do{
drhe562be52011-03-02 18:01:10 +00006960 rc = osFchmod(conchFile->h, cmode);
drhff812312011-02-23 13:33:46 +00006961 }while( rc==(-1) && errno==EINTR );
6962 if( rc!=0 ){
drh7ed97b92010-01-20 13:07:21 +00006963 int code = errno;
6964 fprintf(stderr, "fchmod %o FAILED with %d %s\n",
6965 cmode, code, strerror(code));
6966 } else {
6967 fprintf(stderr, "fchmod %o SUCCEDED\n",cmode);
6968 }
6969 }else{
6970 int code = errno;
6971 fprintf(stderr, "STAT FAILED[%d] with %d %s\n",
6972 err, code, strerror(code));
6973#endif
6974 }
drh715ff302008-12-03 22:32:44 +00006975 }
6976 }
drh7ed97b92010-01-20 13:07:21 +00006977 conchFile->pMethod->xUnlock((sqlite3_file*)conchFile, SHARED_LOCK);
6978
6979 end_takeconch:
drh308c2a52010-05-14 11:30:18 +00006980 OSTRACE(("TRANSPROXY: CLOSE %d\n", pFile->h));
drh7ed97b92010-01-20 13:07:21 +00006981 if( rc==SQLITE_OK && pFile->openFlags ){
drh3d4435b2011-08-26 20:55:50 +00006982 int fd;
drh7ed97b92010-01-20 13:07:21 +00006983 if( pFile->h>=0 ){
drhe84009f2011-03-02 17:54:32 +00006984 robust_close(pFile, pFile->h, __LINE__);
drh7ed97b92010-01-20 13:07:21 +00006985 }
6986 pFile->h = -1;
drh8c815d12012-02-13 20:16:37 +00006987 fd = robust_open(pCtx->dbPath, pFile->openFlags, 0);
drh308c2a52010-05-14 11:30:18 +00006988 OSTRACE(("TRANSPROXY: OPEN %d\n", fd));
drh7ed97b92010-01-20 13:07:21 +00006989 if( fd>=0 ){
6990 pFile->h = fd;
6991 }else{
drh9978c972010-02-23 17:36:32 +00006992 rc=SQLITE_CANTOPEN_BKPT; /* SQLITE_BUSY? proxyTakeConch called
drh7ed97b92010-01-20 13:07:21 +00006993 during locking */
6994 }
6995 }
6996 if( rc==SQLITE_OK && !pCtx->lockProxy ){
6997 char *path = tempLockPath ? tempLockPath : pCtx->lockProxyPath;
6998 rc = proxyCreateUnixFile(path, &pCtx->lockProxy, 1);
6999 if( rc!=SQLITE_OK && rc!=SQLITE_NOMEM && tryOldLockPath ){
7000 /* we couldn't create the proxy lock file with the old lock file path
7001 ** so try again via auto-naming
7002 */
7003 forceNewLockPath = 1;
7004 tryOldLockPath = 0;
dan2b0ef472010-02-16 12:18:47 +00007005 continue; /* go back to the do {} while start point, try again */
drh7ed97b92010-01-20 13:07:21 +00007006 }
7007 }
7008 if( rc==SQLITE_OK ){
7009 /* Need to make a copy of path if we extracted the value
7010 ** from the conch file or the path was allocated on the stack
7011 */
7012 if( tempLockPath ){
7013 pCtx->lockProxyPath = sqlite3DbStrDup(0, tempLockPath);
7014 if( !pCtx->lockProxyPath ){
mistachkinfad30392016-02-13 23:43:46 +00007015 rc = SQLITE_NOMEM_BKPT;
drh7ed97b92010-01-20 13:07:21 +00007016 }
7017 }
7018 }
7019 if( rc==SQLITE_OK ){
7020 pCtx->conchHeld = 1;
7021
7022 if( pCtx->lockProxy->pMethod == &afpIoMethods ){
7023 afpLockingContext *afpCtx;
7024 afpCtx = (afpLockingContext *)pCtx->lockProxy->lockingContext;
7025 afpCtx->dbPath = pCtx->lockProxyPath;
7026 }
7027 } else {
7028 conchFile->pMethod->xUnlock((sqlite3_file*)conchFile, NO_LOCK);
7029 }
drh308c2a52010-05-14 11:30:18 +00007030 OSTRACE(("TAKECONCH %d %s\n", conchFile->h,
7031 rc==SQLITE_OK?"ok":"failed"));
drh7ed97b92010-01-20 13:07:21 +00007032 return rc;
drh308c2a52010-05-14 11:30:18 +00007033 } while (1); /* in case we need to retry the :auto: lock file -
7034 ** we should never get here except via the 'continue' call. */
drh715ff302008-12-03 22:32:44 +00007035 }
7036}
7037
7038/*
7039** If pFile holds a lock on a conch file, then release that lock.
7040*/
7041static int proxyReleaseConch(unixFile *pFile){
drh1c5bb4d2010-05-10 17:29:28 +00007042 int rc = SQLITE_OK; /* Subroutine return code */
drh715ff302008-12-03 22:32:44 +00007043 proxyLockingContext *pCtx; /* The locking context for the proxy lock */
7044 unixFile *conchFile; /* Name of the conch file */
7045
7046 pCtx = (proxyLockingContext *)pFile->lockingContext;
7047 conchFile = pCtx->conchFile;
drh308c2a52010-05-14 11:30:18 +00007048 OSTRACE(("RELEASECONCH %d for %s pid=%d\n", conchFile->h,
drh715ff302008-12-03 22:32:44 +00007049 (pCtx->lockProxyPath ? pCtx->lockProxyPath : ":auto:"),
drh5ac93652015-03-21 20:59:43 +00007050 osGetpid(0)));
drh7ed97b92010-01-20 13:07:21 +00007051 if( pCtx->conchHeld>0 ){
7052 rc = conchFile->pMethod->xUnlock((sqlite3_file*)conchFile, NO_LOCK);
7053 }
drh715ff302008-12-03 22:32:44 +00007054 pCtx->conchHeld = 0;
drh308c2a52010-05-14 11:30:18 +00007055 OSTRACE(("RELEASECONCH %d %s\n", conchFile->h,
7056 (rc==SQLITE_OK ? "ok" : "failed")));
drh715ff302008-12-03 22:32:44 +00007057 return rc;
7058}
7059
7060/*
7061** Given the name of a database file, compute the name of its conch file.
drhf3cdcdc2015-04-29 16:50:28 +00007062** Store the conch filename in memory obtained from sqlite3_malloc64().
drh715ff302008-12-03 22:32:44 +00007063** Make *pConchPath point to the new name. Return SQLITE_OK on success
7064** or SQLITE_NOMEM if unable to obtain memory.
7065**
7066** The caller is responsible for ensuring that the allocated memory
7067** space is eventually freed.
7068**
7069** *pConchPath is set to NULL if a memory allocation error occurs.
7070*/
7071static int proxyCreateConchPathname(char *dbPath, char **pConchPath){
7072 int i; /* Loop counter */
drhea678832008-12-10 19:26:22 +00007073 int len = (int)strlen(dbPath); /* Length of database filename - dbPath */
drh715ff302008-12-03 22:32:44 +00007074 char *conchPath; /* buffer in which to construct conch name */
7075
7076 /* Allocate space for the conch filename and initialize the name to
7077 ** the name of the original database file. */
drhf3cdcdc2015-04-29 16:50:28 +00007078 *pConchPath = conchPath = (char *)sqlite3_malloc64(len + 8);
drh715ff302008-12-03 22:32:44 +00007079 if( conchPath==0 ){
mistachkinfad30392016-02-13 23:43:46 +00007080 return SQLITE_NOMEM_BKPT;
drh715ff302008-12-03 22:32:44 +00007081 }
7082 memcpy(conchPath, dbPath, len+1);
7083
7084 /* now insert a "." before the last / character */
7085 for( i=(len-1); i>=0; i-- ){
7086 if( conchPath[i]=='/' ){
7087 i++;
7088 break;
7089 }
7090 }
7091 conchPath[i]='.';
7092 while ( i<len ){
7093 conchPath[i+1]=dbPath[i];
7094 i++;
7095 }
7096
7097 /* append the "-conch" suffix to the file */
7098 memcpy(&conchPath[i+1], "-conch", 7);
drhea678832008-12-10 19:26:22 +00007099 assert( (int)strlen(conchPath) == len+7 );
drh715ff302008-12-03 22:32:44 +00007100
7101 return SQLITE_OK;
7102}
7103
7104
7105/* Takes a fully configured proxy locking-style unix file and switches
7106** the local lock file path
7107*/
7108static int switchLockProxyPath(unixFile *pFile, const char *path) {
7109 proxyLockingContext *pCtx = (proxyLockingContext*)pFile->lockingContext;
7110 char *oldPath = pCtx->lockProxyPath;
7111 int rc = SQLITE_OK;
7112
drh308c2a52010-05-14 11:30:18 +00007113 if( pFile->eFileLock!=NO_LOCK ){
drh715ff302008-12-03 22:32:44 +00007114 return SQLITE_BUSY;
7115 }
7116
7117 /* nothing to do if the path is NULL, :auto: or matches the existing path */
7118 if( !path || path[0]=='\0' || !strcmp(path, ":auto:") ||
7119 (oldPath && !strncmp(oldPath, path, MAXPATHLEN)) ){
7120 return SQLITE_OK;
7121 }else{
7122 unixFile *lockProxy = pCtx->lockProxy;
7123 pCtx->lockProxy=NULL;
7124 pCtx->conchHeld = 0;
7125 if( lockProxy!=NULL ){
7126 rc=lockProxy->pMethod->xClose((sqlite3_file *)lockProxy);
7127 if( rc ) return rc;
7128 sqlite3_free(lockProxy);
7129 }
7130 sqlite3_free(oldPath);
7131 pCtx->lockProxyPath = sqlite3DbStrDup(0, path);
7132 }
7133
7134 return rc;
7135}
7136
7137/*
7138** pFile is a file that has been opened by a prior xOpen call. dbPath
7139** is a string buffer at least MAXPATHLEN+1 characters in size.
7140**
7141** This routine find the filename associated with pFile and writes it
7142** int dbPath.
7143*/
7144static int proxyGetDbPathForUnixFile(unixFile *pFile, char *dbPath){
drhd2cb50b2009-01-09 21:41:17 +00007145#if defined(__APPLE__)
drh715ff302008-12-03 22:32:44 +00007146 if( pFile->pMethod == &afpIoMethods ){
7147 /* afp style keeps a reference to the db path in the filePath field
7148 ** of the struct */
drhea678832008-12-10 19:26:22 +00007149 assert( (int)strlen((char*)pFile->lockingContext)<=MAXPATHLEN );
drh4bf66fd2015-02-19 02:43:02 +00007150 strlcpy(dbPath, ((afpLockingContext *)pFile->lockingContext)->dbPath,
7151 MAXPATHLEN);
drh7ed97b92010-01-20 13:07:21 +00007152 } else
drh715ff302008-12-03 22:32:44 +00007153#endif
7154 if( pFile->pMethod == &dotlockIoMethods ){
7155 /* dot lock style uses the locking context to store the dot lock
7156 ** file path */
7157 int len = strlen((char *)pFile->lockingContext) - strlen(DOTLOCK_SUFFIX);
7158 memcpy(dbPath, (char *)pFile->lockingContext, len + 1);
7159 }else{
7160 /* all other styles use the locking context to store the db file path */
7161 assert( strlen((char*)pFile->lockingContext)<=MAXPATHLEN );
drh7ed97b92010-01-20 13:07:21 +00007162 strlcpy(dbPath, (char *)pFile->lockingContext, MAXPATHLEN);
drh715ff302008-12-03 22:32:44 +00007163 }
7164 return SQLITE_OK;
7165}
7166
7167/*
7168** Takes an already filled in unix file and alters it so all file locking
7169** will be performed on the local proxy lock file. The following fields
7170** are preserved in the locking context so that they can be restored and
7171** the unix structure properly cleaned up at close time:
7172** ->lockingContext
7173** ->pMethod
7174*/
7175static int proxyTransformUnixFile(unixFile *pFile, const char *path) {
7176 proxyLockingContext *pCtx;
7177 char dbPath[MAXPATHLEN+1]; /* Name of the database file */
7178 char *lockPath=NULL;
7179 int rc = SQLITE_OK;
7180
drh308c2a52010-05-14 11:30:18 +00007181 if( pFile->eFileLock!=NO_LOCK ){
drh715ff302008-12-03 22:32:44 +00007182 return SQLITE_BUSY;
7183 }
7184 proxyGetDbPathForUnixFile(pFile, dbPath);
7185 if( !path || path[0]=='\0' || !strcmp(path, ":auto:") ){
7186 lockPath=NULL;
7187 }else{
7188 lockPath=(char *)path;
7189 }
7190
drh308c2a52010-05-14 11:30:18 +00007191 OSTRACE(("TRANSPROXY %d for %s pid=%d\n", pFile->h,
drh5ac93652015-03-21 20:59:43 +00007192 (lockPath ? lockPath : ":auto:"), osGetpid(0)));
drh715ff302008-12-03 22:32:44 +00007193
drhf3cdcdc2015-04-29 16:50:28 +00007194 pCtx = sqlite3_malloc64( sizeof(*pCtx) );
drh715ff302008-12-03 22:32:44 +00007195 if( pCtx==0 ){
mistachkinfad30392016-02-13 23:43:46 +00007196 return SQLITE_NOMEM_BKPT;
drh715ff302008-12-03 22:32:44 +00007197 }
7198 memset(pCtx, 0, sizeof(*pCtx));
7199
7200 rc = proxyCreateConchPathname(dbPath, &pCtx->conchFilePath);
7201 if( rc==SQLITE_OK ){
drh7ed97b92010-01-20 13:07:21 +00007202 rc = proxyCreateUnixFile(pCtx->conchFilePath, &pCtx->conchFile, 0);
7203 if( rc==SQLITE_CANTOPEN && ((pFile->openFlags&O_RDWR) == 0) ){
7204 /* if (a) the open flags are not O_RDWR, (b) the conch isn't there, and
7205 ** (c) the file system is read-only, then enable no-locking access.
7206 ** Ugh, since O_RDONLY==0x0000 we test for !O_RDWR since unixOpen asserts
7207 ** that openFlags will have only one of O_RDONLY or O_RDWR.
7208 */
7209 struct statfs fsInfo;
7210 struct stat conchInfo;
7211 int goLockless = 0;
7212
drh99ab3b12011-03-02 15:09:07 +00007213 if( osStat(pCtx->conchFilePath, &conchInfo) == -1 ) {
drh7ed97b92010-01-20 13:07:21 +00007214 int err = errno;
7215 if( (err==ENOENT) && (statfs(dbPath, &fsInfo) != -1) ){
7216 goLockless = (fsInfo.f_flags&MNT_RDONLY) == MNT_RDONLY;
7217 }
7218 }
7219 if( goLockless ){
7220 pCtx->conchHeld = -1; /* read only FS/ lockless */
7221 rc = SQLITE_OK;
7222 }
7223 }
drh715ff302008-12-03 22:32:44 +00007224 }
7225 if( rc==SQLITE_OK && lockPath ){
7226 pCtx->lockProxyPath = sqlite3DbStrDup(0, lockPath);
7227 }
7228
7229 if( rc==SQLITE_OK ){
drh7ed97b92010-01-20 13:07:21 +00007230 pCtx->dbPath = sqlite3DbStrDup(0, dbPath);
7231 if( pCtx->dbPath==NULL ){
mistachkinfad30392016-02-13 23:43:46 +00007232 rc = SQLITE_NOMEM_BKPT;
drh7ed97b92010-01-20 13:07:21 +00007233 }
7234 }
7235 if( rc==SQLITE_OK ){
drh715ff302008-12-03 22:32:44 +00007236 /* all memory is allocated, proxys are created and assigned,
7237 ** switch the locking context and pMethod then return.
7238 */
drh715ff302008-12-03 22:32:44 +00007239 pCtx->oldLockingContext = pFile->lockingContext;
7240 pFile->lockingContext = pCtx;
7241 pCtx->pOldMethod = pFile->pMethod;
7242 pFile->pMethod = &proxyIoMethods;
7243 }else{
7244 if( pCtx->conchFile ){
drh7ed97b92010-01-20 13:07:21 +00007245 pCtx->conchFile->pMethod->xClose((sqlite3_file *)pCtx->conchFile);
drh715ff302008-12-03 22:32:44 +00007246 sqlite3_free(pCtx->conchFile);
7247 }
drhd56b1212010-08-11 06:14:15 +00007248 sqlite3DbFree(0, pCtx->lockProxyPath);
drh715ff302008-12-03 22:32:44 +00007249 sqlite3_free(pCtx->conchFilePath);
7250 sqlite3_free(pCtx);
7251 }
drh308c2a52010-05-14 11:30:18 +00007252 OSTRACE(("TRANSPROXY %d %s\n", pFile->h,
7253 (rc==SQLITE_OK ? "ok" : "failed")));
drh715ff302008-12-03 22:32:44 +00007254 return rc;
7255}
7256
7257
7258/*
7259** This routine handles sqlite3_file_control() calls that are specific
7260** to proxy locking.
7261*/
7262static int proxyFileControl(sqlite3_file *id, int op, void *pArg){
7263 switch( op ){
drh4bf66fd2015-02-19 02:43:02 +00007264 case SQLITE_FCNTL_GET_LOCKPROXYFILE: {
drh715ff302008-12-03 22:32:44 +00007265 unixFile *pFile = (unixFile*)id;
7266 if( pFile->pMethod == &proxyIoMethods ){
7267 proxyLockingContext *pCtx = (proxyLockingContext*)pFile->lockingContext;
7268 proxyTakeConch(pFile);
7269 if( pCtx->lockProxyPath ){
7270 *(const char **)pArg = pCtx->lockProxyPath;
7271 }else{
7272 *(const char **)pArg = ":auto: (not held)";
7273 }
7274 } else {
7275 *(const char **)pArg = NULL;
7276 }
7277 return SQLITE_OK;
7278 }
drh4bf66fd2015-02-19 02:43:02 +00007279 case SQLITE_FCNTL_SET_LOCKPROXYFILE: {
drh715ff302008-12-03 22:32:44 +00007280 unixFile *pFile = (unixFile*)id;
7281 int rc = SQLITE_OK;
7282 int isProxyStyle = (pFile->pMethod == &proxyIoMethods);
7283 if( pArg==NULL || (const char *)pArg==0 ){
7284 if( isProxyStyle ){
drh4bf66fd2015-02-19 02:43:02 +00007285 /* turn off proxy locking - not supported. If support is added for
7286 ** switching proxy locking mode off then it will need to fail if
7287 ** the journal mode is WAL mode.
7288 */
drh715ff302008-12-03 22:32:44 +00007289 rc = SQLITE_ERROR /*SQLITE_PROTOCOL? SQLITE_MISUSE?*/;
7290 }else{
7291 /* turn off proxy locking - already off - NOOP */
7292 rc = SQLITE_OK;
7293 }
7294 }else{
7295 const char *proxyPath = (const char *)pArg;
7296 if( isProxyStyle ){
7297 proxyLockingContext *pCtx =
7298 (proxyLockingContext*)pFile->lockingContext;
7299 if( !strcmp(pArg, ":auto:")
7300 || (pCtx->lockProxyPath &&
7301 !strncmp(pCtx->lockProxyPath, proxyPath, MAXPATHLEN))
7302 ){
7303 rc = SQLITE_OK;
7304 }else{
7305 rc = switchLockProxyPath(pFile, proxyPath);
7306 }
7307 }else{
7308 /* turn on proxy file locking */
7309 rc = proxyTransformUnixFile(pFile, proxyPath);
7310 }
7311 }
7312 return rc;
7313 }
7314 default: {
7315 assert( 0 ); /* The call assures that only valid opcodes are sent */
7316 }
7317 }
7318 /*NOTREACHED*/
7319 return SQLITE_ERROR;
7320}
7321
7322/*
7323** Within this division (the proxying locking implementation) the procedures
7324** above this point are all utilities. The lock-related methods of the
7325** proxy-locking sqlite3_io_method object follow.
7326*/
7327
7328
7329/*
7330** This routine checks if there is a RESERVED lock held on the specified
7331** file by this or any other process. If such a lock is held, set *pResOut
7332** to a non-zero value otherwise *pResOut is set to zero. The return value
7333** is set to SQLITE_OK unless an I/O error occurs during lock checking.
7334*/
7335static int proxyCheckReservedLock(sqlite3_file *id, int *pResOut) {
7336 unixFile *pFile = (unixFile*)id;
7337 int rc = proxyTakeConch(pFile);
7338 if( rc==SQLITE_OK ){
7339 proxyLockingContext *pCtx = (proxyLockingContext *)pFile->lockingContext;
drh7ed97b92010-01-20 13:07:21 +00007340 if( pCtx->conchHeld>0 ){
7341 unixFile *proxy = pCtx->lockProxy;
7342 return proxy->pMethod->xCheckReservedLock((sqlite3_file*)proxy, pResOut);
7343 }else{ /* conchHeld < 0 is lockless */
7344 pResOut=0;
7345 }
drh715ff302008-12-03 22:32:44 +00007346 }
7347 return rc;
7348}
7349
7350/*
drh308c2a52010-05-14 11:30:18 +00007351** Lock the file with the lock specified by parameter eFileLock - one
drh715ff302008-12-03 22:32:44 +00007352** of the following:
7353**
7354** (1) SHARED_LOCK
7355** (2) RESERVED_LOCK
7356** (3) PENDING_LOCK
7357** (4) EXCLUSIVE_LOCK
7358**
7359** Sometimes when requesting one lock state, additional lock states
7360** are inserted in between. The locking might fail on one of the later
7361** transitions leaving the lock state different from what it started but
7362** still short of its goal. The following chart shows the allowed
7363** transitions and the inserted intermediate states:
7364**
7365** UNLOCKED -> SHARED
7366** SHARED -> RESERVED
7367** SHARED -> (PENDING) -> EXCLUSIVE
7368** RESERVED -> (PENDING) -> EXCLUSIVE
7369** PENDING -> EXCLUSIVE
7370**
7371** This routine will only increase a lock. Use the sqlite3OsUnlock()
7372** routine to lower a locking level.
7373*/
drh308c2a52010-05-14 11:30:18 +00007374static int proxyLock(sqlite3_file *id, int eFileLock) {
drh715ff302008-12-03 22:32:44 +00007375 unixFile *pFile = (unixFile*)id;
7376 int rc = proxyTakeConch(pFile);
7377 if( rc==SQLITE_OK ){
7378 proxyLockingContext *pCtx = (proxyLockingContext *)pFile->lockingContext;
drh7ed97b92010-01-20 13:07:21 +00007379 if( pCtx->conchHeld>0 ){
7380 unixFile *proxy = pCtx->lockProxy;
drh308c2a52010-05-14 11:30:18 +00007381 rc = proxy->pMethod->xLock((sqlite3_file*)proxy, eFileLock);
7382 pFile->eFileLock = proxy->eFileLock;
drh7ed97b92010-01-20 13:07:21 +00007383 }else{
7384 /* conchHeld < 0 is lockless */
7385 }
drh715ff302008-12-03 22:32:44 +00007386 }
7387 return rc;
7388}
7389
7390
7391/*
drh308c2a52010-05-14 11:30:18 +00007392** Lower the locking level on file descriptor pFile to eFileLock. eFileLock
drh715ff302008-12-03 22:32:44 +00007393** must be either NO_LOCK or SHARED_LOCK.
7394**
7395** If the locking level of the file descriptor is already at or below
7396** the requested locking level, this routine is a no-op.
7397*/
drh308c2a52010-05-14 11:30:18 +00007398static int proxyUnlock(sqlite3_file *id, int eFileLock) {
drh715ff302008-12-03 22:32:44 +00007399 unixFile *pFile = (unixFile*)id;
7400 int rc = proxyTakeConch(pFile);
7401 if( rc==SQLITE_OK ){
7402 proxyLockingContext *pCtx = (proxyLockingContext *)pFile->lockingContext;
drh7ed97b92010-01-20 13:07:21 +00007403 if( pCtx->conchHeld>0 ){
7404 unixFile *proxy = pCtx->lockProxy;
drh308c2a52010-05-14 11:30:18 +00007405 rc = proxy->pMethod->xUnlock((sqlite3_file*)proxy, eFileLock);
7406 pFile->eFileLock = proxy->eFileLock;
drh7ed97b92010-01-20 13:07:21 +00007407 }else{
7408 /* conchHeld < 0 is lockless */
7409 }
drh715ff302008-12-03 22:32:44 +00007410 }
7411 return rc;
7412}
7413
7414/*
7415** Close a file that uses proxy locks.
7416*/
7417static int proxyClose(sqlite3_file *id) {
drha8de1e12015-11-30 00:05:39 +00007418 if( ALWAYS(id) ){
drh715ff302008-12-03 22:32:44 +00007419 unixFile *pFile = (unixFile*)id;
7420 proxyLockingContext *pCtx = (proxyLockingContext *)pFile->lockingContext;
7421 unixFile *lockProxy = pCtx->lockProxy;
7422 unixFile *conchFile = pCtx->conchFile;
7423 int rc = SQLITE_OK;
7424
7425 if( lockProxy ){
7426 rc = lockProxy->pMethod->xUnlock((sqlite3_file*)lockProxy, NO_LOCK);
7427 if( rc ) return rc;
7428 rc = lockProxy->pMethod->xClose((sqlite3_file*)lockProxy);
7429 if( rc ) return rc;
7430 sqlite3_free(lockProxy);
7431 pCtx->lockProxy = 0;
7432 }
7433 if( conchFile ){
7434 if( pCtx->conchHeld ){
7435 rc = proxyReleaseConch(pFile);
7436 if( rc ) return rc;
7437 }
7438 rc = conchFile->pMethod->xClose((sqlite3_file*)conchFile);
7439 if( rc ) return rc;
7440 sqlite3_free(conchFile);
7441 }
drhd56b1212010-08-11 06:14:15 +00007442 sqlite3DbFree(0, pCtx->lockProxyPath);
drh715ff302008-12-03 22:32:44 +00007443 sqlite3_free(pCtx->conchFilePath);
drhd56b1212010-08-11 06:14:15 +00007444 sqlite3DbFree(0, pCtx->dbPath);
drh715ff302008-12-03 22:32:44 +00007445 /* restore the original locking context and pMethod then close it */
7446 pFile->lockingContext = pCtx->oldLockingContext;
7447 pFile->pMethod = pCtx->pOldMethod;
7448 sqlite3_free(pCtx);
7449 return pFile->pMethod->xClose(id);
7450 }
7451 return SQLITE_OK;
7452}
7453
7454
7455
drhd2cb50b2009-01-09 21:41:17 +00007456#endif /* defined(__APPLE__) && SQLITE_ENABLE_LOCKING_STYLE */
drh715ff302008-12-03 22:32:44 +00007457/*
7458** The proxy locking style is intended for use with AFP filesystems.
7459** And since AFP is only supported on MacOSX, the proxy locking is also
7460** restricted to MacOSX.
7461**
7462**
7463******************* End of the proxy lock implementation **********************
7464******************************************************************************/
7465
drh734c9862008-11-28 15:37:20 +00007466/*
danielk1977e339d652008-06-28 11:23:00 +00007467** Initialize the operating system interface.
drh734c9862008-11-28 15:37:20 +00007468**
7469** This routine registers all VFS implementations for unix-like operating
7470** systems. This routine, and the sqlite3_os_end() routine that follows,
7471** should be the only routines in this file that are visible from other
7472** files.
drh6b9d6dd2008-12-03 19:34:47 +00007473**
7474** This routine is called once during SQLite initialization and by a
7475** single thread. The memory allocation and mutex subsystems have not
7476** necessarily been initialized when this routine is called, and so they
7477** should not be used.
drh153c62c2007-08-24 03:51:33 +00007478*/
danielk1977c0fa4c52008-06-25 17:19:00 +00007479int sqlite3_os_init(void){
drh6b9d6dd2008-12-03 19:34:47 +00007480 /*
7481 ** The following macro defines an initializer for an sqlite3_vfs object.
drh1875f7a2008-12-08 18:19:17 +00007482 ** The name of the VFS is NAME. The pAppData is a pointer to a pointer
7483 ** to the "finder" function. (pAppData is a pointer to a pointer because
7484 ** silly C90 rules prohibit a void* from being cast to a function pointer
7485 ** and so we have to go through the intermediate pointer to avoid problems
7486 ** when compiling with -pedantic-errors on GCC.)
7487 **
7488 ** The FINDER parameter to this macro is the name of the pointer to the
drh6b9d6dd2008-12-03 19:34:47 +00007489 ** finder-function. The finder-function returns a pointer to the
7490 ** sqlite_io_methods object that implements the desired locking
7491 ** behaviors. See the division above that contains the IOMETHODS
7492 ** macro for addition information on finder-functions.
7493 **
7494 ** Most finders simply return a pointer to a fixed sqlite3_io_methods
7495 ** object. But the "autolockIoFinder" available on MacOSX does a little
7496 ** more than that; it looks at the filesystem type that hosts the
7497 ** database file and tries to choose an locking method appropriate for
7498 ** that filesystem time.
danielk1977e339d652008-06-28 11:23:00 +00007499 */
drh7708e972008-11-29 00:56:52 +00007500 #define UNIXVFS(VFSNAME, FINDER) { \
drh99ab3b12011-03-02 15:09:07 +00007501 3, /* iVersion */ \
danielk1977e339d652008-06-28 11:23:00 +00007502 sizeof(unixFile), /* szOsFile */ \
7503 MAX_PATHNAME, /* mxPathname */ \
7504 0, /* pNext */ \
drh7708e972008-11-29 00:56:52 +00007505 VFSNAME, /* zName */ \
drh1875f7a2008-12-08 18:19:17 +00007506 (void*)&FINDER, /* pAppData */ \
danielk1977e339d652008-06-28 11:23:00 +00007507 unixOpen, /* xOpen */ \
7508 unixDelete, /* xDelete */ \
7509 unixAccess, /* xAccess */ \
7510 unixFullPathname, /* xFullPathname */ \
7511 unixDlOpen, /* xDlOpen */ \
7512 unixDlError, /* xDlError */ \
7513 unixDlSym, /* xDlSym */ \
7514 unixDlClose, /* xDlClose */ \
7515 unixRandomness, /* xRandomness */ \
7516 unixSleep, /* xSleep */ \
7517 unixCurrentTime, /* xCurrentTime */ \
drhf2424c52010-04-26 00:04:55 +00007518 unixGetLastError, /* xGetLastError */ \
drhb7e8ea22010-05-03 14:32:30 +00007519 unixCurrentTimeInt64, /* xCurrentTimeInt64 */ \
drh99ab3b12011-03-02 15:09:07 +00007520 unixSetSystemCall, /* xSetSystemCall */ \
drh1df30962011-03-02 19:06:42 +00007521 unixGetSystemCall, /* xGetSystemCall */ \
7522 unixNextSystemCall, /* xNextSystemCall */ \
danielk1977e339d652008-06-28 11:23:00 +00007523 }
7524
drh6b9d6dd2008-12-03 19:34:47 +00007525 /*
7526 ** All default VFSes for unix are contained in the following array.
7527 **
7528 ** Note that the sqlite3_vfs.pNext field of the VFS object is modified
7529 ** by the SQLite core when the VFS is registered. So the following
7530 ** array cannot be const.
7531 */
danielk1977e339d652008-06-28 11:23:00 +00007532 static sqlite3_vfs aVfs[] = {
drhe89b2912015-03-03 20:42:01 +00007533#if SQLITE_ENABLE_LOCKING_STYLE && defined(__APPLE__)
drh7708e972008-11-29 00:56:52 +00007534 UNIXVFS("unix", autolockIoFinder ),
drhe89b2912015-03-03 20:42:01 +00007535#elif OS_VXWORKS
7536 UNIXVFS("unix", vxworksIoFinder ),
drh7708e972008-11-29 00:56:52 +00007537#else
7538 UNIXVFS("unix", posixIoFinder ),
7539#endif
7540 UNIXVFS("unix-none", nolockIoFinder ),
7541 UNIXVFS("unix-dotfile", dotlockIoFinder ),
drha7e61d82011-03-12 17:02:57 +00007542 UNIXVFS("unix-excl", posixIoFinder ),
drh734c9862008-11-28 15:37:20 +00007543#if OS_VXWORKS
drh7708e972008-11-29 00:56:52 +00007544 UNIXVFS("unix-namedsem", semIoFinder ),
drh734c9862008-11-28 15:37:20 +00007545#endif
drhe89b2912015-03-03 20:42:01 +00007546#if SQLITE_ENABLE_LOCKING_STYLE || OS_VXWORKS
drh7708e972008-11-29 00:56:52 +00007547 UNIXVFS("unix-posix", posixIoFinder ),
drh734c9862008-11-28 15:37:20 +00007548#endif
drhe89b2912015-03-03 20:42:01 +00007549#if SQLITE_ENABLE_LOCKING_STYLE
7550 UNIXVFS("unix-flock", flockIoFinder ),
chw78a13182009-04-07 05:35:03 +00007551#endif
drhd2cb50b2009-01-09 21:41:17 +00007552#if SQLITE_ENABLE_LOCKING_STYLE && defined(__APPLE__)
drh7708e972008-11-29 00:56:52 +00007553 UNIXVFS("unix-afp", afpIoFinder ),
drh7ed97b92010-01-20 13:07:21 +00007554 UNIXVFS("unix-nfs", nfsIoFinder ),
drh7708e972008-11-29 00:56:52 +00007555 UNIXVFS("unix-proxy", proxyIoFinder ),
drh734c9862008-11-28 15:37:20 +00007556#endif
drh153c62c2007-08-24 03:51:33 +00007557 };
drh6b9d6dd2008-12-03 19:34:47 +00007558 unsigned int i; /* Loop counter */
7559
drh2aa5a002011-04-13 13:42:25 +00007560 /* Double-check that the aSyscall[] array has been constructed
7561 ** correctly. See ticket [bb3a86e890c8e96ab] */
dancaf6b152016-01-25 18:05:49 +00007562 assert( ArraySize(aSyscall)==28 );
drh2aa5a002011-04-13 13:42:25 +00007563
drh6b9d6dd2008-12-03 19:34:47 +00007564 /* Register all VFSes defined in the aVfs[] array */
danielk1977e339d652008-06-28 11:23:00 +00007565 for(i=0; i<(sizeof(aVfs)/sizeof(sqlite3_vfs)); i++){
drh734c9862008-11-28 15:37:20 +00007566 sqlite3_vfs_register(&aVfs[i], i==0);
danielk1977e339d652008-06-28 11:23:00 +00007567 }
danielk1977c0fa4c52008-06-25 17:19:00 +00007568 return SQLITE_OK;
drh153c62c2007-08-24 03:51:33 +00007569}
danielk1977e339d652008-06-28 11:23:00 +00007570
7571/*
drh6b9d6dd2008-12-03 19:34:47 +00007572** Shutdown the operating system interface.
7573**
7574** Some operating systems might need to do some cleanup in this routine,
7575** to release dynamically allocated objects. But not on unix.
7576** This routine is a no-op for unix.
danielk1977e339d652008-06-28 11:23:00 +00007577*/
danielk1977c0fa4c52008-06-25 17:19:00 +00007578int sqlite3_os_end(void){
7579 return SQLITE_OK;
7580}
drhdce8bdb2007-08-16 13:01:44 +00007581
danielk197729bafea2008-06-26 10:41:19 +00007582#endif /* SQLITE_OS_UNIX */